USPatent applicationPatented

Platinum-ruthenium containing catalyst formulations for hydrogen generation

Granted 23 Aug 2011 · 9 office actions

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Abstract

A method and catalysts for producing a hydrogen-rich syngas are disclosed. According to the method a CO-containing gas contacts a water gas shift (WGS) catalyst, optionally in the presence of water, preferably at a temperature of less than about 450° C. to produce a hydrogen-rich gas, such as a hydrogen-rich syngas. Also disclosed is a water gas shift catalyst formulated from: a) Pt, its oxides or mixtures thereof; b) Ru, its oxides or mixtures thereof; and c) at least one of Li, Na, K, Rb, Cs, Mg, Ca, Sr, Ba, Sc, Y, Ti, Zr, V, Mo, Mn, Fe, Co, Rh, Ir, Ge, Sn, Sb, La, Ce, Pr, Sm, and Eu. Another disclosed catalyst formulation comprises Pt, its oxides or mixtures thereof; Ru, its oxides or mixtures thereof; Co, its oxides or mixtures thereof; and at least one of Li, Na, K, Rb, Cs, Mg, Ca, Sr, Ba, Sc, Y, Ti, Zr, V, Mo, Mn, Fe, Rh, Ir, Ge, Sn, Sb, La, Ce, Pr, Sm, and Eu, their oxides and mixtures thereof. The WGS catalyst may be supported on a carrier, such as any one member or a combination of alumina, zirconia, titania, ceria, magnesia, lanthania, niobia, zeolite, perovskite, silica clay, yttria and iron oxide. Fuel processors containing such water gas shift catalysts are also disclosed.

Description

32 parts
›CROSS-REFERENCE TO RELATED APPLICATIONS

The present application is a divisional application of U.S. patent application Ser. No. 10/739,429 filed Dec. 18, 2003, U.S. Pat. No. 7,160,533, issued Jan. 9, 2007, which claims benefit from earlier filed U.S. Provisional Application No. 60/434,708, filed Dec. 20, 2002, which is incorporated herein in its entirety by reference for all purposes. The present application also incorporates by reference the PCT International Patent Application No. U.S. 2003/040944 entitled “Platinum-Ruthenium Containing Catalyst Formulations for Hydrogen Generation” naming as inventors Hagemeyer et al. filed on Dec. 18, 2003.

›BACKGROUND OF THE INVENTION · 1 of 2

1. Field of the Invention

This invention relates to methods and catalysts to generate a hydrogen-rich gas from gas mixtures containing carbon monoxide and water, such as water-containing syngas mixtures. More particularly, the invention includes methods using both precious metal- and non-precious metal-containing catalysts. The catalysts may be supported on a variety of catalyst support materials. Catalysts of the invention exhibit both high activity and selectivity to hydrogen generation and carbon monoxide oxidation.

2. Discussion of the Related Art

Numerous chemical and energy-producing processes require a hydrogen-rich composition (e.g. feed stream.) A hydrogen-rich feed stream is typically combined with other reactants to carry out various processes. Nitrogen fixation processes, for example, produce ammonia by reacting feed streams containing hydrogen and nitrogen under high pressures and temperatures in the presence of a catalyst. In other processes, the hydrogen-rich feed stream should not contain components detrimental to the process. Fuel cells such as polymer electrode membrane (PEM) fuel cells, produce energy from a hydrogen-rich feed stream. PEM fuel cells typically operate with a feed stream gas inlet temperature of less than 450° C. Carbon monoxide is excluded from the feed stream to the extent possible to prevent poisoning of the electrode catalyst, which is typically a platinum-containing catalyst. See U.S. Pat. No. 6,299,995.

One route for producing a hydrogen-rich gas is hydrocarbon steam reforming. In a hydrocarbon steam reforming process steam is reacted with a hydrocarbon fuel, such as methane, iso-octane, toluene, etc., to produce hydrogen gas and carbon dioxide. The reaction, shown below with methane (CH 4 ), is strongly endothermic; it requires a significant amount of heat.

CH 4 +2H 2 O→4H 2 +CO 2

In the petrochemical industry, hydrocarbon steam reforming of natural gas is typically performed at temperatures in excess of 900° C. Even for catalyst assisted hydrocarbon steam reforming the temperature requirement is often still above 700° C. See, for example, U.S. Pat. No. 6,303,098. Steam reforming of hydrocarbons, such as methane, using nickel- and gold-containing catalysts and temperatures greater than 450° C. is described in U.S. Pat. No. 5,997,835. The catalyzed process forms a hydrogen-rich gas, with depressed carbon formation.

One example of effective hydrocarbon steam reforming catalysts is the Sinfelt compositions which are composed of Pt, a Group 11 metal, and a Group 8-10 metal. Group 11 metals include Cu, Ag and Au while Group 8-10 metals include the other noble metals. These catalyst formulations are well known in the promotion of hydrogenation, hydrogenolysis, hydrocracking, dealkylation of aromatics, and naphtha reforming processes. See, for example, U.S. Pat. Nos. 3,567,625 and 3,953,368. The application of catalysts based on the Sinfelt model to water gas shift (“WGS”) reaction, in particular at conditions suitable for lower temperature WGS applications such as PEM fuel cells, has not been previously reported.

Purified hydrogen-containing feed streams have also been produced by filtering the gas mixture produced by hydrocarbon steam reformation through hydrogen-permeable and hydrogen-selective membranes. See, for example, U.S. Pat. No. 6,221,117. Such approaches suffer from drawbacks due to the complexity of the system and slow flow rates through the membranes.

Another method of producing a hydrogen-rich gas such as a feed stream starts with a gas mixture containing hydrogen and carbon monoxide with the absence of any substantial amount of water. For instance, this may be the product of reforming of a hydrocarbon or an alcohol, and selectively removes the carbon monoxide from that gas mixture. The carbon monoxide can be removed by absorption of the carbon monoxide and/or by its oxidation to carbon dioxide. Such a process utilizing a ruthenium based catalyst to remove and oxidize the carbon monoxide is disclosed in U.S. Pat. No. 6,190,430.

The water gas shift reaction is another mechanism for producing a hydrogen-rich gas but from water (steam) and carbon monoxide. An equilibrium process, the water gas shift reaction, shown below, converts water and carbon monoxide to hydrogen and carbon dioxide, and vice versa.

H 2 O+CO H 2 +CO 2

Various catalysts have been developed to catalyze the WGS reaction. These catalysts are typically intended for use at temperatures greater than 450° C. and/or pressures above 1 bar. For instance, U.S. Pat. No. 5,030,440 relates to a palladium and platinum-containing catalyst formulation for catalyzing the shift reaction at 550-650° C. See also U.S. Pat. No. 5,830,425 for an iron/copper based catalyst formulation.

Catalytic conversion of water and carbon monoxide under water gas shift reaction conditions has been used to produce hydrogen-rich and carbon monoxide-poor gas mixtures. Existing WGS catalysts, however, do not exhibit sufficient activity at a given temperature to reach thermodynamic equilibrium concentrations of hydrogen and carbon monoxide such that the product gas may subsequently be used as a hydrogen feed stream. Specifically, existing catalyst formulations are not sufficiently active at low temperatures, that is, below about 450° C. See U.S. Pat. No. 5,030,440.

Platinum (Pt) is a well-known catalyst for both hydrocarbon steam reforming and water gas shift reactions. Under typical hydrocarbon steam reforming conditions, high temperature (above 850° C.) and high pressure (greater than 10 bar), the WGS reaction may occur post-reforming over the hydrocarbon steam reforming catalyst due to the high temperature and generally unselective catalyst compositions. See, for instance, U.S. Pat. Nos. 6,254,807, 5,368,835, 5,134,109, and 5,030,440 for a variety of catalyst compositions and reaction conditions under which the water gas shift reaction may occur post-reforming.

Metals such as cobalt (Co), ruthenium (Ru), palladium (Pd), rhodium (Rh) and nickel (Ni) have also been used as WGS catalysts but are normally too active for the selective WGS reaction and cause methanation of CO to CH 4 under typical reaction conditions. In other words, the hydrogen produced by the water gas shift reaction is consumed as it reacts with the CO present in the presence of such catalysts to yield methane. This methanation reaction activity has limited the utility of metals such as Co, Ru, Pd, Rh and Ni as water gas shift catalysts.

›BACKGROUND OF THE INVENTION · 2 of 2

A need exists, therefore, for a method to produce a hydrogen-rich gas, such as a hydrogen-rich syngas, and catalysts which are highly active and highly selective for both hydrogen generation and carbon monoxide oxidation at moderate temperatures (e.g. below about 450° C.) to provide a hydrogen-rich syngas from a gas mixture containing hydrogen and carbon monoxide.

›SUMMARY OF THE INVENTION

The invention meets the need for highly active and selective catalysts for the generation of hydrogen and the oxidation of carbon monoxide and to thereby provide a hydrogen-rich gas, such as a hydrogen-rich syngas, from a gas mixture of at least carbon monoxide and water. Accordingly, the invention provides methods and catalysts for producing a hydrogen-rich gas.

The invention is, in a first general embodiment, a method for producing a hydrogen-rich gas (e.g., syngas) by contacting a CO-containing gas, such as a syngas mixture, with a water gas shift catalyst in the presence of water at a temperature of not more than 450° C. In the first general embodiment, the water gas shift catalyst comprises a) Pt, its oxides or mixtures thereof, b) Ru, its oxides or mixtures thereof, and c) at least one member selected from the group consisting of Li, Na, K, Rb, Cs, Mg, Ca, Sr, Ba, Sc, Y, Ti, Zr, V, Mo, Mn, Fe, Co, Rh, Ir, Ge, Sn, Sb, La, Ce, Pr, Sm, and Eu, their oxides and mixtures thereof. In another method of the first general embodiment, the water gas shift catalyst comprises Pt, its oxides or mixtures thereof, Ru, its oxides or mixtures thereof, and at least one member selected from the group consisting of Sc, Y, Ti, V, Mo, Fe, Ir, La, and Ce, their oxides and mixtures thereof. The catalyst may be supported on a carrier, for example, at least one member selected from the group consisting of alumina, zirconia, titania, ceria, magnesia, lanthania, niobia, zeolite, perovskite, silica clay, yttria and iron oxide and mixtures thereof. The method of the invention may be conducted at a temperature ranging from about 150° C. to about 450° C.

In a second general embodiment, the invention relates to the water gas shift catalysts themselves—both supported and unsupported catalysts. The inventive water gas shift catalyst comprises, in a first, general embodiment, Pt, its oxides or mixtures thereof, Ru, its oxides or mixtures thereof, and at least one member selected from the group consisting of Li, Na, K, Rb, Cs, Mg, Ca, Sr, Ba, Sc, Y, Ti, Zr, V, Mo, Mn, Fe, Co, Rh, Ir, Ge, Sn, Sb, La, Ce, Pr, Sm, and Eu, their oxides and mixtures thereof. In another catalyst of the first general embodiment, the water gas shift catalyst comprises Pt, its oxides or mixtures thereof, Ru, its oxides or mixtures thereof, and at least one member selected from the group consisting of Sc, Y, Ti, V, Mo, Fe, Ir, La, and Ce, their oxides and mixtures thereof. The catalyst may be supported on a carrier comprising at least one member selected from the group consisting of alumina, zirconia, titania, ceria, magnesia, lanthania, niobia, zeolite, perovskite, silica clay, yttria and iron oxide and mixtures thereof.

In a third general embodiment, the invention is directed to the aforementioned water gas shift catalysts of the second general embodiment in an apparatus for generating a hydrogen gas containing stream from a hydrocarbon or substituted hydrocarbon feed stream. The apparatus further comprises, in addition to the WGS catalyst, a fuel reformer, a water gas shift reactor, and a temperature controller. Such a specific WGS apparatus may be located within another larger apparatus, either stationary or otherwise, for generating energy, or a desired product or feed stream, either gaseous or liquid.

The following described preferred embodiments of the WGS catalyst can be used in each one of the first, second, and third general embodiments or in specific, related embodiments (e.g., fuel cell reactors, fuel processors, hydrocarbon steam reformers.)

In one preferred embodiment the water gas shift catalyst comprises Pt, its oxides or mixtures thereof, Ru, its oxides or mixtures thereof, and at least one member selected from the group consisting of Sc, Y, Ti, V, Mo, Fe, Ir, La, and Ce, their oxides and mixtures thereof.

In a second preferred embodiment the water gas shift catalyst may be formulated from Pt, its oxides or mixtures thereof, Ru, its oxides or mixtures thereof, Co, its oxides or mixtures thereof and at least one of K, Cs, V, Mo, Mn, Fe, La, and Ce, their oxides and mixtures thereof.

In third preferred embodiment the water gas shift catalyst comprises Pt, its oxides or mixtures thereof, Ru, its oxides or mixtures thereof, and at least one of Mo, Fe, and Ce, their oxides and mixtures thereof.

In yet another preferred embodiment the water gas shift catalyst comprises Pt, its oxides or mixtures thereof, Ru, its oxides or mixtures thereof, Fe, its oxides or mixtures thereof, and optionally Ce, its oxides or mixtures thereof.

›BRIEF DESCRIPTION OF THE DRAWINGS

The patent or application file contains at least one drawing executed in color. Copies of this patent or patent application publication with color drawing(s) will be provided by the Office upon request and payment of the necessary fee.

The accompanying drawings, which are included to provide a further understanding of the invention and are incorporated in and constitute a part of this specification, illustrate preferred embodiments of the invention and together with the detailed description serve to explain the principles of the invention. In the drawings:

FIGS. 1A through 1F illustrate the process of producing the library test wafer. The legend for FIG. 1A also applies to FIGS. 1B through 1F exclusively.

FIGS. 2A through 2F illustrate the process of producing the library test wafer. The legend for FIG. 2A also applies to FIGS. 2B through 2F exclusively.

FIGS. 3A through 3G illustrate the process of producing the library test wafer. The legend for FIG. 3A also applies to FIGS. 3B through 3G exclusively.

FIGS. 4A through 4G illustrate the process of producing the library test wafer. The legend for FIG. 4A also applies to FIGS. 4B through 4G exclusively.

FIGS. 5A through 5H illustrate the process of producing the library test wafer. The legend for FIG. 5A also applies to FIGS. 5B through 5H exclusively.

FIGS. 6A through 6C illustrate the process of producing the library test wafer, and

6 D through 6 H illustrate SpotFire plots of the CO conversion versus CO 2 production for the wafer under WGS conditions at various temperatures. The legend for FIG. 6A also applies to FIGS. 6B , and 6 C exclusively.

FIGS. 7A through 7F illustrate the process of producing a library test wafer, and

7 G, 7 H and 7 I, illustrate SpotFire plots of the CO conversion versus CO 2 production for the wafer under WGS conditions at various temperatures. The legend for FIG. 7A also applies to FIGS. 7B through 7F exclusively.

FIGS. 8A through 8E illustrate the process of producing a library test wafer and

8 F, illustrates SpotFire plots of the CO conversion versus CO 2 production for the wafer under WGS conditions. The legend for FIG. 8E also applies to FIGS. 8A through 8D exclusively.

FIGS. 9A through 9G illustrate the process of producing a library test wafer and

9 H, illustrates SpotFire plots of the CO conversion versus CO 2 production for the wafer under WGS conditions. The legend for FIG. 9A also applies to FIGS. 9B through 9G exclusively.

FIGS. 10A through 10I illustrate the process of producing a library test wafer and

10 J, 10 K and 10 L, illustrate SpotFire plots of the CO conversion versus CO 2 production for the wafer under WGS conditions at various temperatures. The legend for FIG. 10A also applies to FIGS. 10B through 10I exclusively.

FIGS. 11A through 11I illustrate the process of producing a library test wafer and

11 J and 11 K illustrate SpotFire plots of the CO conversion versus CO 2 production for the wafer under WGS conditions. The legend for FIG. 11A also applies to FIGS. 11B through 11I exclusively.

FIGS. 12A through 12C illustrate plots of the CO concentration versus temperature for scaled-up catalyst samples under WGS conditions at various space velocities. The legends for each of FIGS. 12A , 12 B, and 12 C apply to each figure exclusively.

FIG. 13 illustrates plots of CO concentration versus temperature for scaled-up catalyst samples under WGS conditions.

FIG. 14 illustrates plots of CO concentration versus temperature for scaled-up catalyst samples under WGS conditions.

FIGS. 15A through 15F illustrate the compositional make-up of various exemplary library test wafers.

FIG. 16A illustrates a representative plot of CO conversion versus CO 2 production for a prototypical library test wafer at various temperature,

16 B, illustrates the effect of catalyst selectivity and activity versus the WGS mass balance, and 16 C, illustrates the effect of temperature on catalyst performance under WGS conditions.

FIG. 17 illustrates plots of CO concentration versus temperature for scaled-up catalyst samples under WGS conditions.

›DETAILED DESCRIPTION OF THE INVENTION · 1 of 8

The invention relates to a method for producing a hydrogen-rich gas, such as a hydrogen-rich syngas. According to the method a CO-containing gas such as a syngas contacts a water gas shift catalyst, in the presence of water, preferably a stoichiometric excess of water, preferably at a reaction temperature of less than about 450° C. to produce a hydrogen-rich gas, such as a hydrogen-rich syngas. The reaction pressure is preferably not more than about 10 bar. The invention also relates to a water gas shift catalyst itself and to apparatus such as water gas shift reactors and fuel processing apparatus comprising such WGS catalysts.

A water gas shift catalyst according to the invention comprises:

a) Pt, its oxides or mixtures thereof;

b) Ru, its oxides or mixtures thereof, and

c) at least one member selected from the group consisting of Li, Na, K, Rb, Cs, Mg, Ca, Sr, Ba, Sc, Y, Ti, Zr, V, Mo, Mn, Fe, Co, Rh, Ir, Ge, Sn, Sb, La, Ce, Pr, Sm, and Eu, their oxides and mixtures thereof. The WGS catalyst may be supported on a carrier, such as any one member or a combination of alumina, zirconia, titania, ceria, magnesia, lanthania, niobia, zeolite, perovskite, silica clay, yttria and iron oxide.

The WGS catalysts of the invention comprise combinations of at least three metals or metalloids, selected from at least three group indicated above, in each and every possible permutation and combination, except as specifically and expressly excluded. Although particular subgroupings of preferred combinations of metals or metalloids are also presented, the present invention is not limited to the particularly recited subgroupings.

Discussion regarding the particular function of various components of catalysts and catalyst systems is provided herewith solely to explain the advantage of the invention, and is not limiting as to the scope of the invention or the intended use, function, or mechanism of the various components and/or compositions disclosed and claimed. As such, any discussion of component and/or compositional function is made, without being bound by theory and by current understanding, unless and except such requirements are expressly recited in the claims. Generally, for example, and without being bound by theory, the metals, Pt, component a), and Ru, component b), both have activity as WGS catalysts. The metals or metalloids of component c) may themselves have activity as WGS catalysts, such as Co, but function in combination with either or both of Pt and Ru to impart beneficial properties to the catalyst of the invention.

Catalysts of the invention can catalyze the WGS reaction at varying temperatures, avoid or attenuate unwanted side reactions such as methanation reactions, as well as generate a hydrogen-rich gas, such as a hydrogen-rich syngas. The composition of the WGS catalysts of the invention and their use in WGS reactions are discussed below.

1. Definitions

Water gas shift (“WGS”) reaction: Reaction which produces hydrogen and carbon dioxide from water and carbon monoxide, and vice versa:

H 2 O+CO H 2 +CO 2

Generally, and unless explicitly stated to the contrary, each of the WGS catalysts of the invention can be advantageously applied both in connection with the forward reaction as shown above (i.e., for the production of H 2 ), or alternatively, in connection with the reverse reaction as shown above (i.e., for the production of CO). As such, the various catalysts disclosed herein can be used to specifically control the ratio of H 2 to CO in a gas stream.

Methanation reaction: Reaction which produces methane and water from a carbon source, such as carbon monoxide or carbon dioxide, and hydrogen:

CO+3H 2 →CH 4 +H 2 O

CO 2 +4H 2 →CH 4 +2H 2 O

“Syngas” (also called synthesis gas): Gaseous mixture comprising hydrogen (H 2 ) and carbon monoxide (CO) which may also contain other gas components such as carbon dioxide (CO 2 ), water (H 2 O), methane (CH 4 ) and nitrogen (N 2 ).

LTS: Refers to “low temperature shift” reaction conditions where the reaction temperature is less than about 250° C., preferably ranging from about 150° C. to about 250° C.

MTS: Refers to “medium temperature shift” reaction conditions where the reaction temperature ranges from about 250° C. to about 350° C.

HTS: Refers to “high temperature shift” reaction conditions where the reaction temperature is more than about 350° C. and up to about 450° C.

Hydrocarbon: Compound containing hydrogen, carbon, and, optionally, oxygen.

The Periodic Table of the Elements is based on the present IUPAC convention, thus, for example, Group 9 comprises Co, Rh, and Ir. (See http://www.iupac.org dated May 30, 2002.)

As discussed herein, the catalyst composition nomenclature uses a dash (i.e., “-”) to separate catalyst component groups where a catalyst may contain one or more of the catalyst components listed for each component group, brackets (i.e., “{ }”) are used to enclose the members of a catalyst component group, “{two of . . . }” is used if two or more members of a catalyst component group are required to be present in a catalyst composition, “blank” is used within the “{ }” to indicate the possible choice that no additional element is added, and a slash (i.e., “/”) is used to separate supported catalyst components from their support material, if any. Additionally, the elements within a catalyst composition formulation include all possible oxidation states, including oxides, or salts, or mixtures thereof.

Using this shorthand nomenclature in this specification, for example, “Pt—{Rh, Ni}—{Na, K, Fe, Os}/ZrO 2 ” would represent catalyst compositions containing Pt, one or more of Rh and Ni, and one or more of Na, K, Fe, and Os supported on ZrO 2 ; all of the catalyst elements may be in any possible oxidation state, unless explicitly indicated otherwise. “Pt—Rh—Ni-{two of Na, K, Fe, Os}” would represent a supported or unsupported catalyst composition containing Pt, Rh, and Ni, and two or more of Na, K, Fe, and Os. “Rh—{Cu, Ag, Au}—{Na, K, blank}/TiO 2 ” would represent catalyst compositions containing Rh, one or more of Cu, Ag and Au, and, optionally, and one of Na or K supported on TiO 2 .

›DETAILED DESCRIPTION OF THE INVENTION · 2 of 8

2. WGS Catalyst

A water gas shift catalyst of the invention comprises:

a) Pt, its oxides or mixtures thereof; b) Ru, its oxides or mixtures thereof; and c) at least one member selected from the group consisting of Li, Na, K, Rb, Cs, Mg, Ca, Sr, Ba, Sc, Y, Ti, Zr, V, Mo, Mn, Fe, Co, Rh, Ir, Ge, Sn, Sb, La, Ce, Pr, Sm, and Eu, their oxides and mixtures thereof. The WGS catalyst may be supported on a carrier, such as any one member or a combination of alumina, zirconia, titania, ceria, magnesia, lanthania, niobia, zeolite, perovskite, silica clay, yttria and iron oxide.

In one preferred general embodiment, the water gas shift catalyst comprises Pt, its oxides or mixtures thereof, Ru, its oxides or mixtures thereof, and at least one member selected from the group consisting of Sc, Y, Ti, V, Mo, Fe, Ir, La, and Ce, their oxides and mixtures thereof, and in another preferred general embodiment, the water gas shift catalyst comprises Pt, its oxides or mixtures thereof, Ru, its oxides or mixtures thereof, Co, its oxides or mixtures thereof, and at least one of K, Cs, V, Mo, Mn, Fe, La, and Ce, their oxides and mixtures thereof. Suitable carriers for supported catalysts are discussed below.

The catalyst components are typically present in a mixture of the reduced or oxide forms; typically one of the forms will predominate in the mixture. A WGS catalyst of the invention may be prepared by mixing the metals and/or metalloids in their elemental forms or as oxides or salts to form a catalyst precursor. This catalyst precursor mixture generally undergoes a calcination and/or reductive treatment, which may be in-situ (within the reactor), prior to use as a WGS catalyst. Without being bound by theory, the catalytically active species are generally understood to be species which are in the reduced elemental state or in other possible higher oxidation states. The catalyst precursor species are believed to be substantially completely converted to the catalytically active species by the pre-use treatment. Nonetheless, the catalyst component species present after calcination and/or reduction may be a mixture of catalytically active species such as the reduced metal or other possible higher oxidation states and uncalcined or unreduced species depending on the efficiency of the calcination and/or reduction conditions.

A. Catalyst Compositions

As discussed above, one embodiment of the invention is a catalyst for catalyzing the water gas shift reaction (or its reverse reaction). According to the invention, a WGS catalyst may have the following composition:

a) Pt, its oxides and mixtures thereof;

b) Ru, its oxides and mixtures thereof; and

c) at least one of Li, Na, K, Rb, Cs, Mg, Ca, Sr, Ba, Sc, Y, Ti, Zr, V, Mo, Mn, Fe, Co, Rh, Ir, Ge, Sn, Sb, La, Ce, Pr, Sm, and Eu, their oxides and mixtures thereof.

The amount of each component present in a given catalyst according to the present invention may vary depending on the reaction conditions under which the catalyst is intended to operate. Generally, a Group 8, 9 or 10 metal component, may be present in an amount ranging from about 0.01 wt. % to about 10 wt. %, preferably about 0.01 wt. % to about 2 wt. %, and more preferably about 0.05 wt. % to about 0.5 wt. %. The lanthanide elements may be present, typically, in amounts ranging from about 0.05 wt. % to about 20 wt. %, preferably about 0.1 wt. % to about 15 wt. %. The main group and metalloid elements may be present in amounts ranging, generally, from about 0.01 wt. % to about 15 wt. %, preferably about 0.02 wt. % to about 10 wt. %.

The above weight percentages are calculated on the total weight of the catalyst component in its final state in the catalyst composition after the final catalyst preparation step (i.e., the resulting oxidation state or states) with respect to the total weight of all catalyst components plus the support material, if any. The presence of a given catalyst component in the support material and the extent and type of its interaction with other catalyst components may effect the amount of a component needed to achieve the desired performance effect.

Other WGS catalysts which embody the invention are listed below. Utilizing the shorthand notation discussed above, where each metal may be present in its reduced form or in a higher oxidation state, the following compositions are examples of preferred catalyst compositions:

Pt—Ru—{Ti, Mo, Fe, Ce}.

Pt—Ru—{V, Mo, Ce}.

Pt—Ru—{V, Mo, Fe}.

Pt—Ru—{Fe, Co, Ir}.

Pt—Ru—{Sc, Y, La, Ce}.

Pt—Ru—Fe—Ce.

Pt—Ru—Ti—{Mo, Fe, Ce}.

One preferred quaternary catalyst is Pt, Ru, Co and one or more of K, Cs, V, Mo, Mn, Fe, La, and Ce. Another preferred ternary catalyst embodiment is Pt, Ru and one or more of Sc, Y, La, Ce.

The catalysts may be more advantageously applied in specific operating temperature ranges. For instance, Pt, Ru and one or more of La and Ce provides high activity in the LTS temperature range; while Pt, Ru, Fe and Ce, preferably on TiO 2 , is preferably utilized in the higher HTS temperature range. For the MTS temperature range, Pt, Ru, Ce and Ti on ZrO 2 and Pt, Ru, Fe, Ce on ZrO 2 are particularly preferred. Pt, Ru, Fe on ZrO 2 may be utilized at both MTS and HTS temperature conditions and provides high selectivity. Titania supported formulations may be utilized advantageously at both LTS and MTS include Pt, Ru, and one or more of V, Mo and Ce, and at HTS, Pt, Ru, and one or more of V, Mo and Fe.

B. Catalyst Component a): Pt

A first component in a catalyst of the invention is Pt, component a). Pt, like all metal components, may be present in a combination of its reduced forms and its oxides. Catalysts of the invention may contain mixtures of these metal states.

Pt is recognized as a catalyst for the WGS reaction. Typically Pt alone is too active and unselective towards the formation of hydrogen under typical WGS conditions. However, as demonstrated here, properly modified Pt containing catalyst formulations may provide both increased selectivity to hydrogen generation at high activity levels under WGS reaction conditions.

›DETAILED DESCRIPTION OF THE INVENTION · 3 of 8

C. Catalyst Component b): Ru

Ruthenium and other metals including, for instance, cobalt, palladium, rhodium, and nickel have been used as WGS catalysts but are normally too active for the selective WGS reaction and cause methanation of CO to CH 4 under typical WGS reaction conditions. In other words, the hydrogen produced by the water gas shift reaction is consumed as it reacts with the CO present in the presence of such catalysts to yield methane. This methanation reaction activity has limited the utility of such metals as water gas shift catalysts.

Unmodified Ru has been shown to catalyze the methanation reaction under WGS conditions. However, according to the present invention, Ru may be converted to a highly active and selective WGS catalyst by adjusting the Ru loading and alloying with other catalyst components which may moderate the activity of Ru for the methanation reaction. In combinations of the invention, Pt was found to efficiently alter the selectivity of unmodified Ru. According to the present invention, various dopants may be added to the Pt and Ru containing catalyst formulations and some preferred catalysts include, for example, Pt—Ru—Co, Pt—Ru—Fe, Pt—Ru—Ti, Pt—Ru—Co—Fe and Pt—Ru—Ti—V. The resulting catalyst compositions are highly active and selective WGS catalysts, and exhibit increased selectivity for the WGS reaction over the competing methanation reaction.

Pt—Ru compositions can also be gradually moderated, while enhancing WGS selectivity at the expense of activity, by adding additional catalyst components such as, for instance, alkali metals, rare earth metals and lanthanides.

D. Catalyst Component c): “Functional” Metals or Metalloids

The WGS catalysts of the invention contain at least three metals or metalloids. In addition to the first two components, discussed above, a WGS catalyst contains metals or metalloids which, when used in combination with Pt and Ru, function to impart beneficial properties to the catalyst of the invention. A catalyst of the invention, then, further comprises at least one member of Li, Na, K, Rb, Cs, Mg, Ca, Sr, Ba, Sc, Y, Ti, Zr, V, Mo, Mn, Fe, Co, Rh, Ir, Ge, Sn, Sb, La, Ce, Pr, Sm, and Eu, their oxides and mixtures thereof, component c).

A catalyst of the invention may include Pt and Ru containing catalysts which may further include activity- or selectivity-enhancing promoters such as Ti, V, Mo, Fe, Co, Ge, Sn, Sb, La, Ce, Pr, Sm or Eu. Preferred carriers include, for instance, zirconia, ceria and titania. Preferred supported catalysts include, for example, Pt—Ru—Co—Fe on ZrO 2 or TiO 2 , Pt—Ru—Co—Na/ZrO 2 , Pt—Ru—Ti on ZrO 2 or CeO x , and Pt—Ru—Ce—Ti on ZrO 2 .

Pt—Ru—Co containing catalyst compositions may preferably comprise one or more of K, Cs, V, Mo, Mn, Fe, La and Ce.

E. Functional Classification of Catalyst Components

Without limiting the scope of the invention, discussion of the functions of the various catalyst components is offered, along with a template for composing catalyst compositions according to the invention. The following classification of various catalyst components will direct one of skill in the art in the selection of various catalyst components to formulate WGS catalyst compositions according to the present invention and depending on the reaction conditions of interest.

Furthermore, according to the invention, there are several classes of catalyst components and metals which may be incorporated into a water gas shift catalyst. Hence, the various elements recited as components in any of the described embodiments (e.g., as component (c)), may be included in any various combination and permutation to achieve a catalyst composition that is coarsely or finely tuned for a specific application (e.g. including for a specific set of conditions, such as, temperature, pressure, space velocity, catalyst precursor, catalyst loading, catalyst surface area/presentation, reactant flow rates, reactant ratios, etc.). In some cases, the effect of a given component may vary with the operating temperature for the catalyst. These catalyst components may function as, for instance, activators or moderators depending upon their effect on the performance characteristics of the catalyst. For example, if greater activity is desired, an activator may be incorporated into a catalyst, or a moderator may be replaced by at least one activator or, alternatively, by at least one moderator one step further up the “activity ladder.” An “activity ladder” ranks secondary or added catalyst components, such as activators or moderators, in order of the magnitude of their respective effect on the performance of a principal catalyst constituent. Conversely, if WGS selectivity of a catalyst needs to be increased (e.g., decrease the occurrence of the competing methanation reaction), then either an activator may be removed from the catalyst or, alternatively, the current moderator may be replaced by at least one moderator one step down the “activity ladder.” The function of these catalyst component may be further described as “hard” or “soft” depending on the relative effect obtained by incorporating a given component into a catalyst. The catalyst components may be metals, metalloids, or even non-metals.

For instance, typically, a WGS catalyst according to the invention suitable for use under LTS conditions employs activators and may only be minimally moderated, if at all, because activation is generally the important parameter to be considered under LTS conditions. Such LTS catalysts also may preferably employ high surface area carriers to enhance catalyst activity. Conversely, WGS catalysts used in HTS conditions may benefit from the catalyst being moderated because selectivity and methanation are parameters to be considered. Such HTS catalysts may use, for example, low surface area carriers. Accordingly, operating temperature may be considered in selecting a WGS catalyst according to the present invention for a particular operating environment.

Activators according to the present invention may include Ru and Co as active and selective WGS-promoting metals. Ir has also been observed to have a slight moderating or activating function, depending on the presence of other counter metals. Other activators may include, but are not limited to, Ti, Zr, V, Mo, La, Ce, Pr and Eu. Ce may be the most active rare earth metal for activating the WGS reaction. La, Pr, Sm and Eu may also be active, particularly at lower temperatures. For HTS, Pr and Sm are preferred soft moderators enhancing selectivity without sacrificing much activity. For LTS, La and Eu may be useftul activators. In general, all lanthanides, other than Ce, show comparable performance and tend to moderate rather than activate noble metal containing catalyst systems. Y is a highly selective moderator for HTS systems whereas La and Eu are active and comparable to Ce for LTS. La is only slightly moderating when doping Ce and may therefore be used to adjust the selectivity of Ce containing catalyst systems.

›DETAILED DESCRIPTION OF THE INVENTION · 4 of 8

Catalyst components that are slightly moderating and highly selective over a broad temperature range (e.g., a temperature range of at least about 50° C., preferably at least about 75° C., and most preferably a temperature range of at least about 100° C.), where such temperature range is included within the overall preferred temperature ranges of up to about 450° C. include Y, Mo, Fe, Pr and Sm; these tend to be selective but not very active at low temperatures, about 250° C. The redox dopants Mo, Fe, Pr and Sm generally lose activity with increasing pre-reduction temperatures while Fe becomes moderately active on its own at high WGS reaction temperatures.

Moderators may also include Ge, Sn and Sb. Typically, for moderators to exert a moderating function, they should be substantially in the reduced or metallic state. Ge alloyed with Sn is an example of an alloy that was found to be highly active, even for low temperature systems, when in the fully oxidized state that is when treated at a pre-reduction temperature of about 300° C. which reduces the noble metals selectively but does not change the active oxidized state of the redox dopants in a catalyst composition.

E. Supports

The support or carrier may be any support or carrier used with the catalyst which allows the water gas shift reaction to proceed. The support or carrier may be a porous, adsorptive, high surface area support with a surface area of about 25 to about 500 m 2 /g. The porous carrier material may be relatively inert to the conditions utilized in the WGS process, and may include carrier materials that have traditionally be utilized in hydrocarbon stream reforming processes, such as, (1) activated carbon, coke, or charcoal; (2) silica or silica gel, silicon carbide, clays, and silicates including those synthetically prepared and naturally occurring, for example, china clay, diatomaceous earth, fuller's earth, kaolin, etc.; (3) ceramics, porcelain, bauxite; (4) refractory inorganic oxides such as alumina, titanium dioxide, zirconium oxide, magnesia, etc.; (5) crystalline and amorphous aluminosilicates such as naturally occurring or synthetically prepared mordenite and/or faujasite; and, (6) combinations of these groups.

When a WGS catalyst of the invention is a supported catalyst, the support utilized may contain one or more of the metals (or metalloids) of the catalyst. The support may contain sufficient or excess amounts of the metal for the catalyst such that the catalyst may be formed by combining the other components with the support. Examples of such supports include ceria which can contribute cerium, Ce, (component c)) to a catalyst, or iron oxide which can contribute iron, Fe, (component c)). When such supports are used the amount of the catalyst component in the support typically may be far in excess of the amount of the catalyst component needed for the catalyst. Thus the support may act as both an active catalyst component and a support material for the catalyst. Alternatively, the support may have only minor amounts of a metal making up the WGS catalyst such that the catalyst may be formed by combining all desired components on the support.

Carrier screening with catalysts containing Pt as the only active noble metal revealed that a water gas shift catalyst may also be supported on a carrier comprising alumina, zirconia, titania, ceria, magnesia, lanthania, niobia, yttria and iron oxide. Perovskite may also be utilized as a support for the inventive catalyst formulations.

Zirconia, titania and ceria may be supports for the present invention and provide high activity for the WGS reaction. Preferably, zirconia is in the monoclinic phase. Highly pure ceria was found to activate PtRuTi in HTS conditions. Niobia, yttria and iron oxide carriers provide high selectivity but are also less active which is believed to be due to a lack of surface area. Pt on magnesia carriers formulated to have high surface areas (approximately 100 m 2 /g) exhibit high selectivity but also exhibit activity which decreases rapidly with falling reaction temperature.

Iron, yttrium, and magnesium oxides may be utilized as primary layers on zirconia carriers to provide both higher surface area and low moderator concentration.

In general, alumina has been found to be an active but unselective carrier for Pt only containing WGS catalysts. However, the selectivity of gamma alumina may be improved by doping with Y, Zr, Co, or one of the rare earth elements, such as, for example, La and Ce. This doping may be accomplished by addition of the oxides or other salts such as nitrates, in either liquid or solid form, to the alumina. Other possible dopants to increase the selectivity include redox dopants, such as for instance, Re, Mo, Fe and basic dopants. Preferred is an embodiment of gamma alumina combined with yttria or with both Zr and/or Co which exhibit both high activity and selectivity over a broad temperature range.

High surface area aluminas, such as gamma-, delta-, or theta-alumina are preferred alumina carriers. Other alumina carriers, such as mixed silica alumina, sol-gel alumina, as well as sol-gel or co-precipitated alumina-zirconia carriers may be used. Alumina typically has a higher surface area and a higher pore volume than carriers such as zirconia and offers a price advantage over other more expensive carriers.

F. Methods of Making a WGS Catalyst

As set forth above, a WGS catalyst of the invention may be prepared by mixing the metals and/or metalloids in their elemental forms or as oxides or salts to form a catalyst precursor, which generally undergoes a calcination and/or reductive treatment. Without being bound by theory, the catalytically active species are generally understood to be species which are in the reduced elemental state or in other possible higher oxidation states.

The WGS catalysts of the invention may be prepared by any well known catalyst synthesis processes. See, for example, U.S. Pat. Nos. 6,299,995 and 6,293,979. Spray drying, precipitation, impregnation, incipient wetness, ion exchange, fluid bed coating, physical or chemical vapor deposition are just examples of several methods that may be utilized to make the present WGS catalysts. Preferred approaches, include, for instance, impregnation or incipient wetness. The catalyst may be in any suitable form, such as, pellets, granular, bed, or monolith. See also the co-pending U.S. patent application Ser. No. 10/739,428 filed on Dec. 18, 2003 titled “Methods For The Preparation Of Catalysts For Hydrogen Generation” to Hagemayer et al. under Attorney Docket No. 7080-011-01 for further details on methods of catalyst preparation and catalyst precursors. The complete disclosure of the above mentioned application and all other references cited herein are incorporated herein in their entireties for all purposes.

›DETAILED DESCRIPTION OF THE INVENTION · 5 of 8

The WGS catalyst of the invention may be prepared on a solid support or carrier material. Preferably, the support or carrier is, or is coated with, a high surface area material onto which the precursors of the catalyst are added by any of several different possible techniques, as set forth above and as known in the art. The catalyst of the invention may be employed in the form of pellets, or on a support, preferably a monolith, for instance a honeycomb monolith.

Catalyst precursor solutions are preferably composed of easily decomposable forms of the catalyst component in a sufficiently high enough concentration to permit convenient preparation. Examples of easily decomposable precursor forms include the nitrate, amine, and oxalate salts. Typically chlorine containing precursors are avoided to prevent chlorine poisoning of the catalyst. Solutions can be aqueous or non-aqueous solutions. Exemplary non-aqueous solvents can include polar solvents, aprotic solvents, alcohols, and crown ethers, for example, tetrahydrofuran and ethanol. Concentration of the precursor solutions generally may be up to the solubility limitations of the preparation technique with consideration given to such parameters as, for example, porosity of the support, number of impregnation steps, pH of the precursor solutions, and so forth. The appropriate catalyst component precursor concentration can be readily determined by one of ordinary skill in the art of catalyst preparation.

Li—The acetate, hydroxide, nitrate and formate salts are both possible catalyst precursors for lithium.

Na—Sodium acetate, alkoxides including methoxide, propoxide, and ethoxide, bicarbonate, carbonate, citrate, formate, hydroxide, nitrate, nitrite and oxalate may be used to prepare WGS catalysts of the invention.

Mg—Water soluble magnesium precursors include the nitrate, acetate, lactate and formate salts.

K—Potassium nitrate, acetate, carbonate, hydroxide and formate are possible potassium catalyst precursors. The KOAc salt is volatile with possible potassium losses when heating up to calcination temperature.

Ca—The nitrate, acetate and hydroxide salts, preferable salts highly soluble in water, may be used to prepare catalysts of the invention.

Sc—The nitrate salt, Sc(NO 3 ) 3 may be a precursor for scandium.

Ti—Titanium precursors which may be utilized in the present invention include ammonium titanyl oxalate, (NH 4 ) 2 TiO(C 2 O 4 ) 2 , available from Aldrich, and titanium(IV) bis(ammonium lactato)dihydroxide, 50 wt % solution in water,

[CH 3 CH(O—)CO 2 NH 4 ] 2 Ti(OH) 2 , available from Aldrich. Other titanium containing precursors include Ti oxalate prepared by dissolving a Ti(IV) alkoxide, such as Ti(IV) propoxide, Ti(OCH 2 CH 2 CH 3 ) 4 , (Aldrich) in 1M aqueous oxalic acid at 60° C. and stirring for a couple of hours, to produce a 0.72M clear colorless solution; TiO(acac)oxalate prepared by dissolving Ti(IV) oxide acetylacetonate, TiO(acac) 2 , (Aldrich) in 1.5M aqueous oxalic acid at 60° C. with stirring for a couple of hours, following by cooling to room temperature overnight to produce 1M clear yellow-brown solution; TiO(acac) 2 , may also be dissolved in dilute acetic acid (50:50 HOAc:H 2 O) at room temperature to produce a 1M clear yellow solution of TiO acac. Preferably, titanium dioxide in the anatase form is utilized as a catalyst precursor material.

V—Vanadium (IV) oxalate, a vanadium precursor, may be prepared from V 2 O 5 , (Aldrich), which is slurried in 1.5M aqueous oxalic acid on hot plate for 1 hour until it turns dark blue due to V(V) reduction to V(IV) by oxalic acid. Ammonium metavanadate(V), (NH 4 )VO 3 , (Cerac, Alfa) may be used as a precursor by dissolving it in water, preferably hot, about 80° C. water. Various polycarboxylic organic acid vanadium precursors can be prepared and used as catalyst precursors, for example, citric, maleic, malonic, and tatartic. Vanadium citrate can be prepared by reacting V 2 O 5 with citric acid, and heating to about 80° C. Ammonium vanadium(V) oxalate may be prepared by reacting (NH 4 )VO 3 and NH 4 OH in room temperature water, increasing temperature to 90° C., stirring to dissolve all solids, cooling to room temperature and adding oxalic acid; this produces a clear orange solution, which is stable for about 2 days. Ammonium vanadium(V) citrate and ammonium vanadium(V) lactate are both prepared by shaking NH 4 VO 3 in, respectively, aqueous citric acid or aqueous lactic acid, at room temperature. Diammonium vanadium(V) citrate may be prepared by dissolving, for instance, 0.25M NH 4 VO 3 in citric acid diammonium salt (Alfa) at room temperature. An exemplary method of preparing ammonium vanadium(V) formate is to dissolve NH 4 VO 3 (0.25M) in water at 95° C., react with 98% formic acid and NH 4 OH to produce the desired ammonium vanadium(V) formate; this method may be utilized to prepare vanadium formate solutions of 0.5 M V concentration or higher.

Cr—Both the nitrate and acetate hydroxides are possible catalyst precursors for chromium.

Mn—Manganese nitrate, manganese acetate (Aldrich) and manganese formate (Alfa) are all possible catalyst precursors for manganese.

Fe—Iron (III) nitrate, Fe(NO 3 ) 3 , iron(III) ammonium oxalate, (NH 4 ) 3 Fe(C 2 O 4 ) 3 , iron(III) oxalate, Fe 2 (C 2 O 4 ) 3 , and iron(II) acetate, Fe(OAc) 2 , are all water soluble; although the iron(III)oxalate undergoes thermal decomposition at only 100° C. Potassium iron(III) oxalate, iron(III) formate and iron(III) citrate are additional iron precursors.

Co—Both cobalt nitrate and acetate are water soluble precursor solutions. The cobalt (II) formate, Co(OOCH) 2 , has low solubility in cold water of about 5 g/100 ml, while cobalt (II) oxalate is soluble in aqueous NH 4 OH. Another possible precursor is sodium hexanitrocobaltate(III), Na 3 Co(NO 2 ) 6 which is water soluble, with gradual decomposition of aqueous solutions slowed by addition of small amounts of acetic acid. Hexaaumine Co(III) nitrate is also soluble in hot (65° C.) water and NMe 4 OH. Cobalt citrate, prepared by dissolving Co(OH) 2 in aqueous citric acid at 80° C. for 1 to 2 hours, is another suitable cobalt precursor.

›DETAILED DESCRIPTION OF THE INVENTION · 6 of 8

Ni—Nickel nitrate, Ni(NO 3 ) 2 , and nickel formate are both possible nickel precursors. The nickel formate may be prepared by dissolving Ni(HCO 2 ) 2 in water and adding formic acid, or by dissolving in dilute formic acid, to produce clear greenish solutions.

Cu—Copper precursors include nitrate, Cu(NO 3 ) 2 , acetate, Cu(OAc) 2 , and formate, Cu(OOCH) 2 , which are increasingly less water soluble in the order presented. Ammonium hydroxide is used to solublize oxalate, Cu(C 2 O 4 ) 2 , and Cu(NH 3 ) 4 (OH) 2 which is soluble in aqueous 5N NH 4 OH. Copper citrate and copper amine carbonate may be prepared from Cu(OH) 2 .

Zn—Zinc nitrate, acetate and formate are all water soluble and possible catalyst precursors. Ammonium zinc carbonate, (NH 4 ) 2 Zn(OH) 2 CO 3 , prepared by reacting zinc hydroxide and ammonium carbonate for a week at room temperature, is another possible precursor for zinc.

Ge—Germanium oxalate may be prepared from amorphous Ge(IV) oxide, glycol-soluble GeO 2 , (Aldrich) by reaction with 1M aqueous oxalic acid at room temperature. H 2 GeO 3 may be prepared by dissolving GeO 2 in water at 80° C. and adding 3 drops of NH 4 OH (25%) to produce a clear, colorless H 2 GeO 3 solution. (NMe 4 ) 2 GeO 3 may be prepared by dissolving 0.25 M GeO 2 in 0.1 M NMe 4 OH. (NH 4 ) 2 GeO 3 may be prepared by dissolving 0.25 M GeO 2 in 0.25M NH 4 OH.

Rb—The nitrate, acetate, carbonate and hydroxide salts may be used as catalyst precursors to prepare the WGS catalyst of the invention. Preferred are water soluble salts.

Sr—The acetate is soluble in cold water to produce a clear colorless solution.

Y—Yttrium nitrate and acetate are both possible catalyst precursors.

Zr—Zirconyl nitrate and acetate, commercially available from Aldrich, and ammonium Zr carbonate and zirconia, available from MEI, are possible precursors for zirconium in either or both the support or catalyst formulation itself.

Nb—Niobium oxalate prepared by dissolving niobium (V) ethoxide in aqueous oxalic acid at 60° C. for 12 hours is a possible catalyst precursor. Another preparative route to the oxalate is dissolving niobic acid or niobic oxide (Nb 2 O 5 ) in oxalic acid at 65° C. Ammonium Nb oxalate is also a possible catalyst precursor for niobium. Dissolving niobic oxide (0.10 M Nb) in NMe 4 OH (0.25 M) and stirring overnight at 65° C. will produce (NMe 4 ) 2 NbO 6 .

Mo—Molybdenum containing precursor solutions may be derived from ammonium molybdate (NH 4 ) 2 MoO 4 (Aldrich) dissolved in room temperature water; Mo oxalate prepared by dissolving MoO 3 (Aldrich) in 1.5M aqueous oxalic acid at 60° C. overnight; and ammonium Mo oxalate prepared from (NH 4 ) 6 Mo 7 O 24 .4H 2 O (Strem) dissolved in 1M aqueous oxalic acid at room temperature. (NH 4 ) 6 Mo 7 O 24 .4H 2 O (Strem) may also be dissolved in water at room temperature to produce a stable solution of ammonium paramolybdate tetrahydrate. Molybdic acid, H 2 MoO 4 , (Alfa Aesar or Aldrich) may each be dissolved in room temperature water to produce 1M Mo containing solutions.

Ru—Ru nitrosyl nitrate, Ru(NO)(NO 3 ) 3 (Aldrich), potassium ruthenium oxide, K 2 RuO 4 .H 2 O, potassium perruthenate, KRuO 4 , ruthenium nitrosyl acetate, Ru(NO)(OAc) 3 , and tetrabutylammonium perruthenate, NBu 4 RuO 4 , are all possible ruthenium metal catalyst precursors. NMe 4 Ru(NO)(OH) 4 solution can be prepared by dissolving Ru(NO)(OH) 3 (0.1 M) (H. C. Starck) in NMe4OH (0.12M) at 80° C. produces a clear dark red-brown 0.1M Ru solution useful as a catalyst precursor solution.

Rh—A suitable rhodium catalyst precursor is Rh nitrate (Aldrich or Strem).

Pd—Catalyst compositions containing Pd can be prepared by using precursors like Pd nitrate, typically stabilized by dilute HNO 3 , and available as a 10 wt. % solution from Aldrich, or Pd(NH 3 ) 2 (NO 2 ) 2 available as a 5 wt. % Pd commercial solution, stabilized by dilute NH 4 OH. Pd(NH 3 ) 4 (NO 3 ) 2 and Pd(NH 3 ) 4 (OH) 2 are also available commercially.

Ag—Silver nitrate, silver nitrite, silver diammine nitrite, and silver acetate are possible silver catalyst precursors.

Cd—Cadmium nitrate is water soluble and a suitable catalyst precursor.

In—Indium formate and indium nitrate are preferred precursors for indium.

Sn—Tin oxalate produced by reacting the acetate with oxalic acid may be used as a catalyst precursor. Tin tartrate, 5 nC 4 H 4 O 6 , in NMe 4 OH at about 0.25 M Sn concentration, and tin acetate, also dissolved in NMe 4 OH at about 0.25 M Sn concentration, may be used as catalyst precursors.

Sb—Ammonium antimony oxalate produced by reacting the acetate with oxalic acid and ammonia is a suitable antimony precursor. Antimony oxalate, Sb 2 (C 2 O 4 ) 3 , available from Pfaltz & Bauer, is a water soluble precursor. Potassium antimony oxide, KSbO 3 , and antimony citrate, prepared by stirring antimony(II) acetate in 1 M citric acid at room temperature, are both possible catalyst precursors.

Te—Telluric acid, Te(OH) 6 , may be used as a precursor for tellurium.

Cs—Cs salts including the nitrate, acetate, carbonate, and hydroxide are soluble in water and possible catalyst precursors.

Ba—Barium acetate and barium nitrate are both suitable precursors for barium catalyst components.

La—Lanthanum precursors include nitrate, La(NO 3 ) 3 , acetate, La(OAc) 3 , and perchlorate, La(ClO 4 ) 3 , all of which may be prepared as aqueous solutions.

Ce—Ce(III) and Ce(IV) solutions may be prepared from Ce(III) nitrate hexahydrate, Ce(NO 3 ) 3 .6H 2 O, (Aldrich) and ammonium cerium(IV) nitrate, (NH 4 ) 2 Ce(NO 3 ) 6 , (Aldrich), respectively, by dissolution in room temperature water. Nitric acid, 5 vol. %, may be added to the Ce(III) salt to increase solubility and stability. Ce(OAc) 3 (Alfa) and Ce(NO 3 ) 4 (Alfa) may also be utilized as catalyst precursors.

Pr, Nd, Sm and Eu—The nitrate, Ln(NO 3 ) 3 , or acetate, Ln(O 2 CCH 3 ) 3 , are possible catalyst precursors for these lanthanides.

Hf—Hafnoyl chloride and nitrate are both possible precursors. Preparing the haffioyl nitrate by dissolving Hf(acac) 4 in dilute HNO 3 at low heat provides a clear stable solution of haffioyl nitrate.

›DETAILED DESCRIPTION OF THE INVENTION · 7 of 8

Ta—Tantalum oxalate solution, Ta 2 O(C 2 O 4 ) 4 , available from H. C. Starck, or prepared by dissolving Ta(OEt) 5 in aqueous oxalic acid at 60° C. for 12 hours, is a possible catalyst precursor.

W—Ammonium metatungstate hydrate, (NH 4 ) 6 W 12 O 39 , is water soluble and a possible tungsten catalyst precursor. H 2 WO 4 is reacted with NH 4 OH and NMe 4 OH, respectively, to prepare (NH 4 ) 2 WO 4 and (NMe 4 ) 2 WO 4 which are both possible precursors.

Re—Rhenium oxide in H 2 O 2 , perrhenic acid, (HReO 4 ), NaReO 4 and NH 4 ReO 4 are suitable rhenium precursors.

Ir—Hexachloroiridate acid, H 2 IrCl 6 , potassium hexacyanoiridate and potassium hexanitroiridate are all possible catalyst precursors for iridium.

Pt—Platinum containing catalyst compositions may be prepared by using any one of a number of precursor solutions, such as, Pt(NH 3 ) 4 (NO 3 ) 2 (Aldrich, Alfa, Heraeus, or Strem), Pt(NH 3 ) 2 (NO 2 ) 2 , in nitric acid, Pt(NH 3 ) 4 (OH) 2 (Alfa), K 2 Pt(NO 2 ) 4 , Pt(NO 3 ) 2 , PtCl 4 and H 2 PtCl 6 (chloroplatinic acid). Pt(NH 3 ) 4 (HCO 3 ) 2 , Pt(NH 3 ) 4 (HPO 4 ), (NMe 4 ) 2 Pt(OH) 6 , H 2 Pt(OH) 6 , K 2 Pt(OH) 6 , Na 2 Pt(OH) 6 and K 2 Pt(CN) 6 are also possible choices along with Pt oxalate salts, such as K 2 Pt(C 2 O 4 ) 2 . The Pt oxalate salts may be prepared from Pt(NH 3 ) 4 (OH) 2 which is reacted with 1M oxalic acid solution to produce a clear, colorless solution of the desired Pt oxalate salts.

Au—Auric acid, HAuCl 4 , in dilute HCl at about 5% Au may be a gold precursor. Gold nitrate in 0.1 M concentration may be prepared by dissolving HAu(NO 3 ) 4 (Alfa) in concentrated nitric acid, followed by stirring at room temperature for 1 week in the dark, then diluting 1:1 with water to produce a yellow solution. It should be noted that further dilution may result in Au precipitation. More concentrated, 0.25M, for example, gold nitrate may be prepared by starting with Au(OH) 3 (Alfa). NaAu(OH) 4 , KAu(OH) 4 , and NMe 4 Au(OH) 4 may each be prepared from Au(OH) 3 dissolved in bases NaOH, KOH, or NMe 4 OH, respectively, in base concentrations ranging from, for instance, 0.25 M or higher.

3. Producing a Hydrogen-Rich Gas, Such as, a Hydrogen-Rich Syngas

The invention also relates to a method for producing a hydrogen-rich gas, such as a hydrogen-rich syngas. An additional embodiment of the invention may be directed to a method of producing a CO depleted gas, such as a CO-depleted syngas.

A CO-containing gas, such as a syngas contacts with a water gas shift catalyst in the presence of water according to the method of the invention. The reaction preferably may occur at a temperature of less than 450° C. to produce a hydrogen-rich gas such as a hydrogen-rich syngas.

A method of the invention may be utilized over a broad range of reaction conditions. Preferably, the method is conducted at a pressure of no more than about 75 bar, preferably at a pressure of no more than about 50 bar to produce a hydrogen-rich syngas. Even more preferred is to have the reaction occur at a pressure of no more than about 25 bar, or even no more than about 15 bar, or not more than about 10 bar. Especially preferred is to have the reaction occur at, or about atmospheric pressure. Depending on the formulation of the catalyst according to the present invention, the present method may be conducted at reactant gas temperatures ranging from less than about 150° C. to up to about 450° C. Preferably, the reaction occurs at a temperature selected from one or more temperature subranges of LTS, MTS and/or HTS as described above. Space velocities may range from about 1 hr −1 up to about 1,000,000 h −1 . Feed ratios, temperature, pressure and the desired product ratio are factors that would normally be considered by one of skill in the art to determine a desired optimum space velocity for a particular catalyst formulation.

4. Fuel Processor Apparatus

The invention further relates to a fuel processing system for generation of a hydrogen-rich gas from a hydrocarbon or substituted hydrocarbon fuel. Such a fuel processing system would comprise, for example, a fuel reformer, a water gas shift reactor and a temperature controller.

The fuel reformer would convert a fuel reactant stream comprising a hydrocarbon or a substituted hydrocarbon fuel to a reformed product stream comprising carbon monoxide and water. The fuel reformer may typically have an inlet for receiving the reactant stream, a reaction chamber for converting the reactant stream to the product stream, and an outlet for discharging the product stream.

The fuel processor system would also comprise a water gas shift reactor for effecting a water gas shift reaction at a temperature of less than about 450° C. This water gas shift reactor may comprise an inlet for receiving a water gas shift feed stream comprising carbon monoxide and water from the product stream of the fuel reformer, a reaction chamber having a water gas shift catalyst as described herein located therein, and an outlet for discharging the resulting hydrogen-rich gas. The water gas shift catalyst would preferable be effective for generating hydrogen and carbon dioxide from the water gas shift feed stream.

The temperature controller may be adapted to maintain the temperature of the reaction chamber of the water gas shift reactor at a temperature of less than about 450° C.

5. Industrial Applications

Syngas is used as a reactant feed in number of industrial applications, including for example, methanol synthesis, ammonia synthesis, oxoaldehyde synthesis from olefins (typically in combination with a subsequent hydrogenation to form the corresponding oxoalcohol), hydrogenations and carbonylations. Each of these various industrial applications preferably includes a certain ratio of H 2 to CO in the syngas reactant stream. For methanol synthesis the ratio of H 2 :CO is preferably about 2:1. For oxosynthesis of oxoaldehydes from olefins, the ratio of H 2 :CO is preferably about 1:1. For ammonia synthesis, the ratio of H 2 to N 2 (e.g., supplied from air) is preferably about 3:1. For hydrogenations, syngas feed streams that have higher ratios of H 2 :CO are preferred (e.g., feed streams that are H 2 enriched, and that are preferably substantially H 2 pure feed streams). Carbonylation reactions are preferably effected using feed streams that have lower ratios of H 2 :CO (e.g., feed streams that are CO enriched, and that are preferably substantially CO pure feed streams).

›DETAILED DESCRIPTION OF THE INVENTION · 8 of 8

The WGS catalysts of the present invention, and the methods disclosed herein that employ such WGS catalysts, can be applied industrially to adjust or control the relative ratio H 2 :CO in a feed stream for a synthesis reaction, such as methanol synthesis, ammonia synthesis, oxoaldehyde synthesis, hydrogenation reactions and carbonylation reactions. In one embodiment, for example, a syngas product stream comprising CO and H 2 can be produced from a hydrocarbon by a reforming reaction in a reformer (e.g., by steam reforming of a hydrocarbon such as methanol or naphtha). The syngas product stream can then be fed (directly or indirectly after further downstream processing) as the feed stream to a WGS reactor, preferably having a temperature controller adapted to maintain the temperature of the WGS reactor at a temperature of about 450° C. or less during the WGS reaction (or at lower temperatures or temperature ranges as described herein in connection with the catalysts of the present invention). The WGS catalyst(s) employed in the WGS reactor are preferably selected from one or more of the catalysts and/or methods of the invention. The feed stream to the WGS reactor is contacted with the WGS catalyst(s) under reaction conditions effective for controlling the ratio of H 2 :CO in the product stream from the WGS reactor (i.e., the “shifted product stream”) to the desired ratio for the downstream reaction of interest (e.g., methanol synthesis), including to ratios described above in connection with the various reactions of industrial significance. As a non-limiting example, a syngas product stream from a methane steam reformer will typically have a H 2 :CO ratio of about 6:1. The WGS catalyst(s) of the present invention can be employed in a WGS reaction (in the forward direction as shown above) to further enhance the amount of H 2 relative to CO, for example to more than about 10:1, for a downstream hydrogenation reaction. As another example, the ratio of H 2 :CO in such a syngas product stream can be reduced by using a WGS catalyst(s) of the present invention in a WGS reaction (in the reverse direction as shown above) to achieve or approach the desired 2:1 ratio for methanol synthesis. Other examples will be known to a person of skill in the art in view of the teachings of the present invention.

A person of skill in the art will understand and appreciate that with respect to each of the preferred catalyst embodiments as described in the preceding paragraphs, the particular components of each embodiment can be present in their elemental state, or in one or more oxide states, or mixtures thereof.

Although the foregoing description is directed to the preferred embodiments of the invention, it is noted that other variations and modifications will be apparent to those skilled in the art, and which may be made without departing from the spirit or scope of the invention.

›EXAMPLES · 1 of 4

General

Small quantity catalyst composition samples are generally prepared by automated liquid dispensing robots (Cavro Scientific Instruments) on flat quartz test wafers.

Generally supported catalysts are prepared by providing a catalyst support (e.g. alumina, silica, titania, etc.) to the wafer substrate, typically as a slurry composition using a liquid-handling robot to individual regions or locations on the substrate or by wash-coating a surface of the substrate using techniques known to those of skill in the art, and drying to form dried solid support material on the substrate. Discrete regions of the support-containing substrate are then impregnated with specified compositions intended to operate as catalysts or catalyst precursors, with the compositions comprising metals (e.g. various combinations of transition metal salts). In some circumstances the compositions are delivered to the region as a mixture of different metal-containing components and in some circumstances (additionally or alternatively) repeated or repetitive impregnation steps are performed using different metal-containing precursors. The compositions are dried to form supported catalyst precursors. The supported catalyst precursors are treated by calcining and/or reducing to form active supported catalytic materials at discrete regions on the wafer substrate.

The catalytic materials (e.g., supported or bulk) on the substrate are tested for activity and selectivity for the WGS reaction using a scanning mass spectrometer (SMS) comprising a scanning/sniffing probe and a mass spectrometer. More details on the scanning mass spectrometer instrument and screening procedure are set forth in U.S. Pat. No. 6,248,540, in European Patent No. EP 1019947 and in European Patent Application No. EP 1186892 and corresponding U.S. application Ser. No. 09/652,489 filed Aug. 31, 2000 by Wang et al., the complete disclosure of each of which is incorporated herein in its entirety. Generally, the reaction conditions (e.g. contact time and/or space velocities, temperature, pressure, etc.) associated with the scanning mass spectrometer catalyst screening reactor are controlled such that partial conversions (i.e., non-equilibrium conversions, e.g., ranging from about 10% to about 40% conversion) are obtained in the scanning mass spectrometer, for discrimination and ranking of catalyst activities for the various catalytic materials being screened. Additionally, the reaction conditions and catalyst loadings are established such that the results scale appropriately with the reaction conditions and catalyst loadings of larger scale laboratory research reactors for WGS reactions. A limited set of tie-point experiments are performed to demonstrate the scalability of results determined using the scanning mass spectrometer to those using larger scale laboratory research reactors for WGS reactions. See, for example, Example 12 below.

Preparative and Testing Procedures

The catalysts and compositions of the present invention were identified using high-throughput experimental technology, with the catalysts being prepared and tested in library format, as described generally above, and in more detail below. Specifically, such techniques were used for identifying catalyst compositions that were active and selective as WGS catalysts. As used in these examples, a “catalyst library” refers to an associated collection of candidate WGS catalysts arrayed on a wafer substrate, and having at least two, and typically three or more common metal components (including metals in the fully reduced state, or in a partially or fully oxidized state, such as metal salts), but differing from each other with respect to relative stoichiometry of the common metal components.

Depending on the library design and the scope of the investigation with respect to a particular library, multiple (i.e., two or more) libraries were typically formed on each wafer substrate. A first group of test wafers each comprised about 100 different catalyst compositions formed on a three-inch wafer substrate, typically with most catalysts being formed using at least three different metals. A second group of test wafers each comprised about 225 different catalyst compositions on a four-inch wafer substrate, again typically with most catalysts being formed using at least three different metals. Each test wafer itself typically comprised multiple libraries. Each library typically comprised binary, ternary or higher-order compositions—that is, for example, as ternary compositions that comprised at least three components (e.g., A, B, C) combined in various relative ratios to form catalytic materials having a molar stoichiometry covering a range of interest (e.g., typically ranging from about 20% to about 80% or more (e.g. to about 100% in some cases) of each component). For supported catalysts, in addition to varying component stoichiometry for the ternary compositions, relative total metal loadings were also investigated.

Typical libraries formed on the first group of (three-inch) test wafers included, for example, “five-point libraries” (e.g., twenty libraries, each having five different associated catalyst compositions), or “ten-point” libraries (e.g., ten libraries, each having ten different associated catalyst compositions), or “fifteen-point libraries” (e.g., six libraries, each having fifteen different associated catalyst compositions) or “twenty-point libraries” (e.g., five libraries, each having twenty different associated catalyst compositions). Typical libraries formed on the second group of (four-inch) test wafers included, for example, “nine-point libraries” (e.g., twenty-five libraries, each having nine different associated catalyst compositions), or “twenty-five point” libraries (e.g., nine libraries, each having twenty-five different associated catalyst compositions). Larger compositional investigations, including “fifty-point libraries” (e.g., two or more libraries on a test wafer, each having fifty associated catalyst compositions), were also investigated. Typically, the stoichiometric increments of candidate catalyst library members ranged from about 1.5% (e.g. for a “fifty-five point ternary”) to about 15% (e.g., for a “five-point” ternary). See, generally, for example, WO 00/17413 for a more detailed discussion of library design and array organization. FIG. 15A to 15 F of the instant application shows library designs for libraries prepared on a common test wafer, as graphically represented using Library Studios (Symyx Technologies, Inc., Santa Clara, Calif.), where the libraries may vary with respect to both stoichiometry and catalyst loading. Libraries of catalytic materials that vary with respect to relative stoichiometry and/or relative catalyst loading can also be represented in a compositional table, such as is shown in the several examples of this application.

›EXAMPLES · 2 of 4

Referring to FIG. 15A , for example, the test wafer includes nine libraries, where each of the nine libraries comprise nine different ternary compositions of the same three-component system. In the nomenclature of the following examples, such a test wafer is said to include nine, nine-point-ternary (“9PT”) libraries. The library depicted in the upper right hand corner of this test wafer includes catalyst compositions comprising components A, B and X 1 in 9 different stoichiometries. As another example, with reference to FIG. 15B , a partial test wafer is depicted that includes a fifteen-point-ternary (“15PT”) library having catalyst compositions of Pt, Pd and Cu in fifteen various stoichiometries. Generally, the composition of each catalyst included within a library is graphically represented by an association between the relative amount (e.g., moles or weight) of individual components of the composition and the relative area shown as corresponding to that component. Hence, referring again to the fifteen different catalyst compositions depicted on the partial test wafer represented in FIG. 15B , it can be seen that each composition includes Pt (red), Pd (green) and Cu (blue), with the relative amount of Pt increasing from column 1 to column 5 (but being the same as compared between rows within a given column), with the relative amount of Pd decreasing from row 1 to row 5 (but being the same as compared between columns within a given row), and with the relative amount of Cu decreasing from a maximum value at row 5, column 1 to a minimum at, for example, row 1, column 1. FIG. 15C shows a test wafer that includes a fifty-point-ternary (“50PT”) library having catalyst compositions of Pt, Pd and Cu in fifty various stoichiometries. This test library could also include another fifty-point ternary library (not shown), for example with three different components of interest.

FIGS. 15D through 15F are graphical representations of two fifty-point ternary libraries (“bis 50PT libraries”) at various stages of preparation—including a Pt—Au—Ag/CeO 2 library (shown as the upper right ternary library of FIG. 15E ) and a Pt—Au—Ce/ZrO 2 library (shown as the lower left ternary library of FIG. 15E ). Note that the Pt—Au—Ag/CeO 2 library also includes binary-impregnated compositions—Pt—Au/CeO 2 binary catalysts (row 2) and Pt—Ag/CeO 2 (column 10). Likewise, the Pt—Au—Ce/ZrO 2 library includes binary-impregnated compositions—Pt—Ce/ZrO 2 (row 11) and Au—Ce/ZrO 2 (column 1). Briefly, the bis 50PT libraries were prepared by depositing CeO 2 and ZrO 2 supports onto respective portions of the test wafer as represented graphically in FIG. 15D . The supports were deposited onto the test wafer as a slurry in a liquid media using a liquid handling robot, and the test wafer was subsequently dried to form dried supports. Thereafter, salts of Pt, Au and Ag were impregnated onto the regions of the test wafer containing the CeO 2 supports in the various relative stoichiometries as represented in FIG. 15E (upper-right-hand library). Likewise, salts of Pt, Au and Ce were impregnated onto the regions of the test wafer containing the ZrO 2 supports in the various relative stoichiometries as represented in FIG. 15E (lower-left-hand library). FIG. 15F is a graphical representation of the composite library design, including the relative amount of catalyst support.

Specific compositions of tested catalytic materials of the invention are detailed in the following examples for selected libraries.

Performance benchmarks and reference experiments (e.g., blanks) were also provided on each quartz catalyst test wafer as a basis for comparing the catalyst compositions of the libraries on the test wafer. The benchmark catalytic material formulations included a Pt/zirconia catalyst standard with about 3% Pt catalyst loading (by weight, relative to total weight of catalyst and support). The Pt/zirconia standard was typically synthesized by impregnating 3 μL of, for example, 1.0% or 2.5% by weight, Pt stock solution onto zirconia supports on the wafer prior to calcination and reduction pretreatment.

Typically wafers were calcined in air at a temperature ranging from 300° C. to 500° C. and/or reduced under a continuous flow of 5% hydrogen at a temperature ranging from about 200° C. to about 500° C. (e.g., 450° C.). Specific treatment protocols are described below with respect to each of the libraries of the examples.

For testing using the scanning mass spectrometer, the catalyst wafers were mounted on a wafer holder which provided movement in an XY plane. The sniffing/scanning probe of the scanning mass spectrometer moved in the Z direction (a direction normal to the XY plane of movement for the wafer holder), and approached in close proximity to the wafer to surround each independent catalyst element, deliver the feed gas and transmit the product gas stream from the catalyst surface to the quadrupole mass spectrometer. Each element was heated locally from the backside using a CO 2 laser, allowing for an accessible temperature range of about 200° to about 600° C. The mass spectrometer monitored seven masses for hydrogen, methane, water, carbon monoxide, argon, carbon dioxide and krypton: 2, 16, 18, 28, 40, 44 and 84, respectively.

Catalyst compositions were tested at various reaction temperatures, typically including for example at about 250° C., 300° C., 350° C. and/or 400° C. Particularly for LTS formulations, testing of catalyst activity at reaction temperatures may start as low as 200° C. The feed gas typically consisted of 51.6% H 2 , 7.4% Kr, 7.4% CO, 7.4% CO 2 and 26.2% H 2 O. The H 2 , CO, CO 2 and Kr internal standard are premixed in a single gas cylinder and then combined with the water feed. Treated water (18.1 mega-ohms-cm at 27.5° C.) produced by a Bamstead Nano Pure Ultra Water system was used, without degassing.

Data Processing and Analysis

Data analysis was based on mass balance plots where CO conversion was plotted versus CO 2 production. The mass spectrometer signals were uncalibrated for CO and CO 2 but were based on Kr-normalized mass spectrometer signals. The software package SpotFire™ (sold by SpotFire, Inc. of Somerville, Mass.) was used for data visualization.

›EXAMPLES · 3 of 4

A representative plot of CO conversion versus CO 2 production for a WGS reaction is shown in FIG. 16A involving, for discussion purposes, two ternary catalyst systems—a Pt—Au—Ag/CeO 2 catalyst library and a Pt—Au—Ce/ZrO 2 catalyst library—as described above in connection with FIGS. 15D through 15F . The catalyst compositions of these libraries were screened at four temperatures: 250° C., 300° C., 350° C. and 400° C. With reference to the schematic diagram shown in FIG. 16B , active and highly selective WGS catalysts (e.g., Line I of FIG. 16B ) will approach a line defined by the mass balance for the water-gas-shift reaction (the “WGS diagonal”) with minimal deviation, even at relatively high conversions (i.e., at CO conversions approaching the thermodynamic equilibrium conversion (point “TE” on FIG. 16B )). Highly active catalysts may begin to deviate from the WGS diagonal due to cross-over to the competing methanation reaction (point “M” on FIG. 16C ). Catalyst compositions that exhibit such deviation may still, however, be useful WGS catalysts depending on the conversion level at which such deviation occurs. For example, catalysts that first deviate from the WGS diagonal at higher conversion levels (e.g., Line II of FIG. 16B ) can be employed as effective WGS catalysts by reducing the overall conversion (e.g., by lowering catalyst loading or by increasing space velocity) to the operational point near the WGS diagonal. In contrast, catalysts that deviate from the WGS diagonal at low conversion levels (e.g., Line III of FIG. 16B ) will be relatively less effective as WGS catalysts, since they are unselective for the WGS reaction even at low conversions. Temperature affects the thermodynamic maximum CO conversion, and can affect the point of deviation from the mass-balance WGS diagonal as well as the overall shape of the deviating trajectory, since lower temperatures will generally reduce catalytic activity. For some compositions, lower temperatures will result in a more selective catalyst, demonstrated by a WGS trajectory that more closely approximates the WGS mass-balance diagonal. (See FIG. 16C ). Referring again to FIG. 16A , it can be seen that the Pt—Au-Ag/CeO 2 and the Pt—Au—Ce/ZrO 2 catalyst compositions are active and selective WGS catalysts at each of the screened temperatures, and particularly at lower temperatures.

Generally, the compositions on a given wafer substrate were tested together in a common experimental run using the scanning mass spectrometer and the results were considered together. In this application, candidate catalyst compositions of a particular library on the substrate (e.g., ternary or higher-order catalysts comprising three or more metal components) were considered as promising candidates for an active and selective commercial catalyst for the WGS reaction based on a comparison to the Pt/ZrO 2 standard composition included on that wafer. Specifically, libraries of catalytic materials were deemed to be particularly preferred WGS catalysts if the results demonstrated that a meaningful number of catalyst compositions in that library compared favorably to the Pt/ZrO 2 standard composition included on the wafer substrate with respect to catalytic performance. In this context, a meaningful number of compositions was generally considered to be at least three of the tested compositions of a given library. Also in this context, favorable comparison means that the compositions had catalytic performance that was as good as or better than the standard on that wafer, considering factors such as conversion, selectivity and catalyst loading. All catalyst compositions of a given library were in many cases positively identified as active and selective WGS catalysts even in situations where only some of the library members compared favorably to the Pt/ZrO 2 standard, and other compositions within that library compared less than favorably to the Pt/ZrO 2 standard. In such situations, the basis for also including members of the library that compared somewhat less favorably to the standard is that these members in fact positively catalyzed the WGS reaction (i.e., were effective as catalysts for this reaction). Additionally, it is noted that such compositions may be synthesized and/or tested under more optimally tuned conditions (e.g., synthesis conditions, treatment conditions and/or testing conditions (e.g., temperature)) than occurred during actual testing in the library format, and significantly, that the optimal conditions for the particular catalytic materials being tested may differ from the optimal conditions for the Pt/ZrO2 standard—such that the actual test conditions may have been closer to the optimal conditions for the standard than for some of the particular members. Therefore, it was specifically contemplated that optimization of synthesis, treatment and/or screening conditions, within the generally defined ranges of the invention as set forth herein, would result in even more active and selective WGS catalysts than what was demonstrated in the experiments supporting this invention. Hence, in view of the foregoing discussion, the entire range of compositions defined by each of the claimed compositions (e.g., each three-component catalytic material, or each four-component catalytic material) was demonstrated as being effective for catalyzing the WGS reaction. Further optimization is considered, with various specific advantages associated with various specific catalyst compositions, depending on the desired or required commercial application of interest. Such optimization can be achieved, for example, using techniques and instruments such as those described in U.S. Pat. No. 6,149,882, or those described in WO 01/66245 and its corresponding U.S. applications, U.S. Ser. No. 09/801,390, entitled “Parallel Flow Process Optimization Reactor” filed Mar. 7, 2001 by Bergh et al., and U.S. Ser. No. 09/801,389, entitled “Parallel Flow Reactor Having Variable Feed Composition” filed Mar. 7, 2001 by Bergh et al., each of which are incorporated herein by reference for all purposes.

›EXAMPLES · 4 of 4

Additionally, based on the results of screening of initial libraries, selective additional “focus” libraries were selectively prepared and tested to confirm the results of the initial library screening, and to further identify better performing compositions, in some cases under the same and/or different conditions. The test wafers for the focus libraries typically comprised about 225 different candidate catalyst compositions formed on a four-inch wafer substrate, with one or more libraries (e.g. associated ternary compositions A, B, C) formed on each test wafer. Again, the metal-containing components of a given library were typically combined in various relative ratios to form catalysts having stoichiometry ranging from about 0% to about 100% of each component, and for example, having stoichiometric increments of about 10% or less, typically about 2% or less (e.g., for a “fifty-six point ternary”). Focus libraries are more generally discussed, for example, in WO 00/17413. Such focus libraries were evaluated according to the protocols described above for the initial libraries.

The raw residual gas analyzer (“rga”) signal values generated by the mass spectrometer for the individual gases are uncalibrated and therefore different gases may not be directly compared. Methane data (mass 16) was also collected as a control. The signals are typically standardized by using the raw rga signal for krypton (mass 84) to remove the effect of gas flow rate variations. Thus, for each library element, the standardized signal is determined as, for example, sH 2 O=raw H 2 O/raw Kr; sCO=raw CO/raw Kr; sCO 2 =raw CO 2 /raw Kr and so forth.

Blank or inlet concentrations are determined from the average of the standardized signals for all blank library elements, i.e. library elements for which the composition contains at most only support. For example, b avg H 2 O=average sH 2 O for all blank elements in the library; b avg CO=average sCO for all blank elements in the library; and so forth.

Conversion percentages are calculated using the blank averages to estimate the input level (e.g., b avg CO) and the standardized signal (e.g., sCO) as the output for each library element of interest. Thus, for each library element, CO conversion =100×(b avg CO−sCO)/b avg CO and H 2 O conversion =100×(b avg H 2 O−sH 2 O)/b avg H 2 O.

The carbon monoxide (CO) to carbon dioxide (CO 2 ) selectivity is estimated by dividing the amount of CO 2 produced (sCO 2 −b avg CO 2 ) by the amount of CO consumed (b avg CO−sCO). The CO 2 and CO signals are not directly comparable because the rga signals are uncalibrated. However, an empirical conversion constant (0.6 CO 2 units=1 CO unit) has been derived, based on the behavior of highly selective standard catalyst compositions. The selectivity of the highly selective standard catalyst compositions approach 100% selectivity at low conversion rates. Therefore, for each library element, estimated CO to CO 2 selectivity=100×0.6×(sCO 2 −b avg CO 2 )/(b avg CO−sCO). Low CO consumption rates can produce highly variable results, and thus the reproducibility of CO 2 selectivity values is maintained by artificially limiting the CO 2 selectivity to a range of 0 to 140%.

The complete disclosure of all references cited herein are incorporated herein in their entireties for all purposes.

The following examples are representative of the screening of libraries that lead to identification of the particularly claimed inventions herein.

›Examples15
›Example 1

A 6.8% Pt/titania masterbatch was prepared by incipient wetness impregnation of 1000 mg titania powder (Degussa Aerolyst 7708, less than 100 mesh sieve fraction) with 1,300 μl of Pt(NH 3 ) 2 (NO 2 ) 2 stock solution (5% Pt, STREM) and dried overnight at ambient, then at 80° C., then at 110° C.

500 mg of the 6.8% Pt/TiO 2 masterbatch was slurried into 4 ml of EG/H 2 O/MEO 40/30/30 mixture and then slurry-dispensed onto a 3″ quartz wafer in two layers of 3 μl slurry each for a total dispense volume of 6 μl.

The Pt/TiO 2 precoated wafer was then impregnated with 25 different metal solutions in squares of 2 by 2 wells by direct dispensing from metal stock solution vials onto the wafer at 2 μl dispense volume/well. The wafer was dried, calcined in air at 450° C. for 2 hours and then reduced in 5% H 2 /Ar at 450° C. for 2 hours. See FIGS. 1A-1F .

The reduced library was then screened in scanning mass spectrometer (“SMS”) for WGS activity with a H 2 /CO/CO 2 /H 2 O mixed feed at 250° C., 300° C., 350° C., and 400° C. This set of experiments demonstrated active and selective WGS catalyst formulations of Pt with various metals on TiO2 support.

›Example 2

A 3″ quartz wafer was precoated with TiO 2 , CeO 2 and ZrO 2 carriers by slurry dispensing (Degussa Aerolyst 7711/Degussa P25 70:30 titania mix), (Aldrich ceria 21,157-5) and (Norton XZ16052/MEI FZO923 70:30 zirconia mix) onto the wafer.

The carrier-precoated wafer was dried and then impregnated with Ru, Ce, Fe gradients. The Ru, Ce, Fe gradients were premixed in a microtiter plate by dilution of Ru nitrosyl nitrate stock solution (1.5% Ru), Ce nitrate stock solution (1M Ce) and Fe nitrate stock solution (1M Fe) with water and transferred from the microtiter plate to the wafer by Cavro dispensing (3 μl dispense volume per well). The wafer was dried and then impregnated with Ti gradients. The Ti gradients were premixed in a microtiter plate by dilution of ammonium titanyl oxalate stock solution (1M Ti) with water and then transferred from the microtiter plate to the wafer by Cavro dispensing (3 μl dispense volume per well). The wafer was dried and then impregnated with Pt gradients. The Pt gradients were premixed in a microtiter plate by dilution of Pt(NH 3 ) 2 (NO 2 ) 2 stock solution (5% Pt) with water and then transferred from the microtiter plate to the wafer by Cavro dispensing (3 μl dispense volume per well). The wafer was dried, calcined in air at 500° C. for 1 hour and then reduced in 5% H 2 /Ar at 300° C. for 4 hours. See FIGS. 2A-2E .

The reduced library was then screened in SMS for WGS activity with a H 2 /CO/CO 2 /H 2 O mixed feed at 250° C., 300° C., 350° C., and 400° C. This set of experiments demonstrated active and selective WGS catalyst formulations of Pt—Ce—Fe containing formulations on ZrO 2 and TiO 2 supports.

›Example 3

A 4″ quartz wafer was precoated with zirconia carrier by repeated slurry dispensing zirconia (ZrO 2 Norton XZ16052/MEI FZO923 70:30 mixture, 2×4 μl for a total of 8 μl zirconia slurry, 1 g ZrO 2 mix slurried in 4 ml EG/H 2 O 1:1) onto the wafer.

The zirconia carrier-precoated wafer was dried and then impregnated with Pt by Cavro dispensing from a Pt(NH 3 ) 2 (NO 2 ) 2 stock solution vial (2.5% Pt) directly onto the wafer by 3 μl dispense volume/well. Six internal standards were spotted into 6 first row/last column wells (4 μl zirconia slurry+3 μl 2.5% Pt solution). The wafer was dried for 10 minutes at 70° C.

The wafer was then impregnated with Co—Ru and Ru—Pt gradients by Cavro dispensing from Co nitrate (0.5M Co), Ru nitrosyl nitrate (1% Ru) and Pt(NH 3 ) 2 (NO 2 ) 2 (5% Pt) stock solution vials to a microtiter plate followed by transferring replicas of the 8-point and 7-point gradients onto the wafer at 3 μl dispense volume/well. The wafer was dried and then impregnated with FeCo by Cavro dispensing from Fe nitrate (1M Fe) and Co nitrate (0.5M Co) stock solution vials to a microtiter plate (8-point and 7-point gradients) followed by transferring replicas of the Fe—H 2 O and Fe—Co gradients onto the wafer, 3 μl dispense volume per well. The wafer was dried and then impregnated with Pt by Cavro dispensing from a Pt(NH 3 ) 2 (NO 2 ) 2 stock solution vial (2.5% Pt) directly onto the wafer by 3 μl dispense volume/well.

Thus four sub-libraries: 8×8 quaternary PtRuCoFe (Pt first) and 8×7 quaternary PtRuCoFe (Pt last, to check the effect of order of Pt addition) and 7×8 ternary RuCoFe and 7×7 quaternary PtRuCoFe are mapped out as rectangles/squares with orthogonal gradients. The wafer was dried, calcined in air at 500° C. for 1 hour and then reduced in 5% H 2 /Ar at 400° C. for 3 hours. A commercial catalyst was slurried into 5 positions of the first row and last column as external standards (3 μl catalyst slurry). See FIGS. 3A-3G .

The reduced library was then screened in SMS for WGS activity with a H 2 /CO/CO 2 /H 2 O mixed feed at 250° C., 300° C., 350° C., and 400° C. This set of experiments demonstrated active and selective WGS catalyst formulations of Pt—Ru—Co—Fe and Pt-free Ru—Co—Fe compositions.

›Example 4

A 4″ quartz wafer was precoated with ZrO 2 carrier by slurry dispensing 3 μl of mixed zirconia powder slurry (Norton ZrO 2 XZ16052/MEI ZrO 2 FZO923 70:30, 1.5 g ZrO 2 /4 ml MEO/EG/H 2 O 50:25:25).

The zirconia carrier precoated wafer was impregnated with {Sc, Y, La, Ce} gradients by Cavro dispensing from Sc, Y, La, Ce nitrate stock solution vials to a microtiter plate (single column 7-point and 8-point gradients) followed by transferring replicas of the four 7P and 8P columns onto the wafer (2.5 μl dispense volume per well, 8 replicas of the 7PCs and 7 replicas of the 8PCs). Six internal standards were also synthesized by spotting 3 μl of a Pt(NH 3 ) 2 (NO 2 ) 2 stock solution (2.5% Pt) into the corresponding first row/last column positions. The wafer was slowly dried at room temperature and then impregnated with Ru gradient by Cavro dispensing from Ru nitrosyl nitrate stock solution vial to microtiter plate (single row 8-point and 7-point gradients; water vial in Pt position) followed by transferring replicas of the 7P and 8P row onto the wafer (2.5 μl dispense volume per well, 16 replicas of the 7PR gradient and 14 replicas of the 8PR gradient, 7×8=56 point ternaries, four 56PT on the wafer). The wafer was slowly dried at room temperature and then impregnated with Pt gradient by Cavro dispensing from Pt(NH 3 ) 2 (NO 2 ) 2 stock solution vial to microtiter plate (single row 8-point and 7-point gradients; water vial in Ru position) followed by transferring replicas of the 7P and 8P row onto the wafer (2.5 μl dispense volume per well, 16 replicas of the 7PR gradient and 14 replicas of the 8PR gradient, 7×8=56 point ternaries, four 56PT on the wafer). The wafer was dried and then calcined in air at 500° C. for 1 hour followed by reduction with 5% H 2 /N 2 at 400° C. for 2 hours. Commercial catalyst was slurried into 5 positions of the first row and last column as external standards (3 μl catalyst slurry/well). See FIGS. 4A-4G .

The reduced library was then screened in SMS for WGS activity with a H 2 /CO/CO 2 /H 2 O mixed feed at 250° C., 300° C. and 350° C. This set of experiments demonstrated active and selective WGS catalyst formulations of Pt—Ru—{La, Ce} at MTS and HTS reaction conditions.

›Example 5

A 4″ quartz wafer was precoated with ZrO 2 carrier by slurry dispensing 3 μl of mixed zirconia powder slurry (Norton ZrO 2 XZ16052/MEI ZrO 2 FZO923 70:30, 1.5 g ZrO 2 /4 ml MEO/EG/H 2 O 50:25:25).

The zirconia carrier precoated wafer was impregnated with Co gradients by Cavro dispensing from Co nitrate stock solution vial to microtiter plate (single column 7-point and 8-point Co gradients) followed by transferring replicas of the 7P and 8P column onto the wafer (2.5 μl dispense volume per well, 16 replicas of the 7PC and 14 replicas of the 8PC). The wafer was slowly dried at room temperature and then impregnated with Ru gradients by Cavro dispensing from Ru nitrosyl nitrate stock solution vial to microtiter plate (single row 8-point and 7-point Ru gradients) followed by transferring replicas of the 7P and 8P row onto the wafer (2.5 μl dispense volume per well, 16 replicas of the 7PR gradient and 14 replicas of the 8PR gradient, 7×8=56 point ternaries, four 56PT on the wafer). Six internal standards were also synthesized by spotting 3 μl of Pt(NH 3 ) 2 (NO 2 ) 2 stock solution (2.5% Pt) into the corresponding first row/last column positions. The wafer was slowly dried at room temperature and then impregnated with K by Cavro dispensing 2.5 μl/well from 0.2M KNO 3 tock solution vial directly onto the lower half of the wafer. The wafer was dried and then impregnated with Pt by Cavro dispensing 2.5 μl/well from Pt(NH 3 ) 2 (NO 2 ) 2 stock solution vials directly onto the wafer (left hand side of wafer uniformly impregnated with 1% Pt solution and right hand side uniformly impregnated with 2% Pt solution). The wafer was slowly dried at room temperature, calcined in air at 450° C. for 2 hours and then reduced in a flow of 5% H 2 /N 2 at 400° C. for 2 hours. Commercial catalyst was slurried into 5 positions of the first row and last column as external standards (3 μl catalyst slurry/well). See FIGS. 5A-5H .

The reduced library was then screened in SMS for WGS activity with a H 2 /CO/CO 2 /H 2 O mixed feed at 250° C., 300° C. and 350° C. This set of experiments demonstrated active and selective WGS catalyst formulations of Pt—Ru—Co compositions.

›Example 6

A 3″ quartz wafer was coated with niobia, ceria and magnesia carriers by slurry-dispensing aqueous carrier slurries onto the wafer (4 μl slurry/well, 1 g of carrier powder slurried in 2 ml H 2 O for niobia and ceria; 500 mg of carrier powder slurried in 2 ml H 2 O for magnesia). Niobia carriers were produced by Norton, product numbers 2001250214, 2000250356, 2000250355, 2000250354 and 2000250351. Cerias came from Norton (product numbers 2001080053, 2001080052 and 2001080051) and Aldrich (product number 21,157-50. Magnesia was obtained from Aldrich (product number 24,338-8).

The carrier precoated wafer was then loaded with the same Pt gradient for each carrier in a single impregnation step by liquid dispensing 3 μl Pt(NH 3 ) 2 (NO 2 ) 2 solution (5% Pt) from microtiter plate to wafer. The wafer was dried and then reduced in 5% H 2 /Ar at 450° C. for 2 hours. See FIGS. 6A through 6C .

The reduced library was then screened in SMS for WGS activity with a H 2 /CO/CO 2 /H 2 O mixed feed at 250° C., 300° C., 350° C., and 400° C. Results at 250° C., 300° C., 350° C., and 400° C. are presented in FIGS. 6D through 6H .

This set of experiments demonstrated active and selective WGS catalyst formulations of various Pt on one of Nb oxide, Ce oxide or Mg oxide formulations on the wafer. Various Norton niobia carriers were found to be very active and selective over a broad temperature range. Norton ceria 2001080051 was found to be very selective at higher temperatures. Magnesia was less active than either of niobia or ceria but did exhibit highly selective WGS performance.

›Example 7

A 4″ quartz wafer was coated with fourteen different catalyst carriers by slurry-dispensing the carrier slurries onto the wafer. Each wafer column was coated with a different carrier, except for columns 14 and 15 which were both coated with gamma-alumina, described below:

Ceria, 99.5% purity; 9 to 15 n particle size; BET (m 2 /g): 55-95; Alfa 43136; dispensed onto the wafer from a slurry of 0.75 g powder slurried in 4 mL ethylene glycol (“EG”)/H 2 O/MEO 40:30:30 mixture.

Ceria, produced by the low temperature calcination of precipitated Ce hydroxide; dispensed onto the wafer from a slurry of 1.5 g powder slurried in 4 mL EG/H 2 O/MEO 40:30:30 mixture.

Zirconia; 99.8% purity; BET (m 2 /g): greater than 90; Norton XZ16052; dispensed onto the wafer from a slurry of 1.5 g powder slurried in 4 mL EG/H 2 O/MEO 40:30:30 mixture.

Zirconia; 99.8% purity; BET (m 2 /g): 269; Norton XZ16154; dispensed onto the wafer from a slurry of 1.5 g powder slurried in 4 mL EG/H 2 O/MEO 40:30:30 mixture.

Titania; BET (m 2 /g): 45; Degussa Aerolyst 7708; dispensed onto the wafer from a slurry of 1.0 g powder slurried in 4 mL EG/H 2 O/MEO 40:30:30 mixture.

Titania; 99% purity; BET (m 2 /g): 37; Norton XT25384; dispensed onto the wafer from a slurry of 1.0 g powder slurried in 4 mL EG/H 2 O/MEO 40:30:30 mixture.

Niobia; 97% purity; BET (m 2 /g): 27; Norton 355; dispensed onto the wafer from a slurry of 1.0 g powder slurried in 4 mL EG/H 2 O/MEO 40:30:30 mixture.

Lanthania; 99.999% purity; Gemre-5N from Gemch Co., Ltd. (Shanghai, China); dispensed onto the wafer from a slurry of 1.5 g powder slurried in 4 mL EG/H 2 O/MEO 40:30:30 mixture.

Mixed Fe—Ce—O; coprecipitated Fe and Ce oxalate; calcined at 360° C.; dispensed onto the wafer from a slurry of 1.0 g powder slurried in 4 mL EG/H 2 O/MEO 40:30:30 mixture.

Mixed La—Ce—O; coprecipitated La and Ce oxalate; calcined at 760° C.; dispensed onto the wafer from a slurry of 1.0 g powder slurried in 4 mL EG/H 2 O/MEO 40:30:30 mixture.

Mixed Sb 3 O 4 —SnO 2 carrier from Alfa; 99.5% purity; BET (m 2 /g): 30-80; Sb 3 O 4 :SnO 2 ratio is 10:90 by weight; dispensed onto the wafer from a slurry of 1.0 g powder slurried in 4 mL EG/H 2 O/MEO 40:30:30 mixture.

Mixed Fe—Cr—Al—O; commercially available high temperature water gas shift catalyst; dispensed onto the wafer from a slurry of 1.0 powder slurried in 4 mL EG/H 2 O/MEO 40:30:30 mixture.

Fe 2 O 3 /FeOOH; BET (m 2 /g): 14; 50:50 physical mixture of commercial powders (Bayferrox 720N: Bayoxide E3920 from Bayer); dispensed onto the wafer from a slurry of 1.0 g powder slurried in 4 mL EG/H 2 O/MEO 40:30:30 mixture.

14 and 15) Gamma-Al 2 O 3 ; BET (m 2 /g): 150; Condea Catalox Sba150; dispensed onto the wafer from a slurry of 1.0 g powder slurried in 4 mL EG/H 2 O/MEO 40:30:30 mixture.

In all cases, except for carrier 1, the slurries were applied in 3 μL per well; carrier 1 was deposited as two aliquots of 3 μl/well. The wafer was then dried at 70° C. for 10 minutes.

Columns 14 and 15 were coated with 2.5 mL per well of zirconyl nitrate (0.25M) and lanthanum nitrate (0.25M), respectively, then dried for 10 minutes at 70° C. The first 13 columns of the carrier coated wafer were then loaded with a 15 point Pt gradient by liquid dispensing of 3 μL Pt(NH 3 ) 2 (NO 2 ) 2 solution (1% Pt) from microtiter plate to wafer. The wafer was dried at 70° C. for 10 minutes. Columns 14 and 15 were then loaded with a 15 point Pt gradient by liquid dispensing of 3 μL Pt(NH 3 ) 2 (NO 2 ) 2 solution (1% Pt) from microtiter plate to wafer. The wafer was dried at 70° C. for 10 minutes, calcined in air at 350° C. for 2 hours, then reduced in 5% H 2 /Ar at 450° C. for 2 hours. Six internal standards were synthesized by spotting 3 μL Pt(NH 3 ) 2 (NO 2 ) 2 solution (1.0% Pt) into the corresponding first row/last column positions. See FIGS. 7A through 7F .

The reduced library was then screened in SMS for WGS activity with a H 2 /CO/CO 2 /H 2 O mixed feed at 250° C. and 300° C. The CO conversion versus CO 2 production results at 250° C. and 300° C. are presented in FIGS. 7G , 7 H and 7 I. More detailed test results, such as, CO conversion, CO 2 production and CH 4 production at 250° C. and 300° C. for each of the 225 individual catalyst wells on the test wafer are presented in Table 1.

This set of experiments demonstrated active and selective WGS catalyst formulations of various Pt on various of the oxide carrier formulations on the wafer.

›Example 8

A 4″ quartz wafer was precoated with zirconia carrier by repeated slurry dispensing zirconia powder (Norton XZ16052) onto the wafer. The slurry was composed of 1.5 g zirconia powder in 4 mL of a MEO/EG/H 2 O 40:30:30 mixture. A total of 3 μL of slurry was deposited on each spot.

The zirconia carrier precoated wafer was impregnated with concentration gradients of Ru—Co, Ru—Ce, Ru—La and Ru—La solution by Cavro dispensing from metal stock solutions vials to a microtiter plate followed by transferring replicas of the 8 col.×7P, 7 col.×8P, 8 col.×7P, and 7 col.×8P gradients, respectively, onto the wafer (2.5 μl dispense volume per well). Co, Ce and La were provided as their nitrates, Zr as the zirconyl nitrate and Ru as the nitrosyl nitrate. The wafer was dried at 70° C. for 10 minutes and then was uniformly coated with 2.5 μl/well of a Pt(NH 3 ) 2 (NO 2 ) 2 stock solution (1% Pt).

The wafer was dried at 70° C. for 10 minutes, calcined in air at 350° C. for 2 hours, then reduced in 5% H 2 /Ar at 300° C. for 2 hours. Seven internal standards were synthesized by spotting 2.5 μl Pt(NH 3 ) 2 (NO 2 ) 2 solution (1.0% Pt) into the corresponding first row/last column and center positions. See FIGS. 8A through 8E .

The reduced library was then screened in SMS for WGS activity with a H 2 /CO/CO 2 /H 2 O mixed feed at 300° C. The CO conversion versus CO 2 production results at 300° C. are presented in FIG. 8F . More detailed test results, such as, CO conversion, CO 2 production and CH 4 production at 300° C. for each of the 225 individual catalyst wells on the test wafer are presented in Table 2.

This set of experiments demonstrated active and selective WGS catalyst formulations of Pt—Ru—{Co, Ce, La, Zr} compositions on the wafer.

›Example 9

A 4″ quartz wafer was precoated with zirconia carrier by repeated slurry dispensing zirconia powder (Norton XZ16052) onto the wafer. The slurry was composed of 1.5 g zirconia powder in 4 mL of a MEO/EG/H 2 O 40:30:30 mixture. A total of 3 μL of slurry was deposited on each spot.

The zirconia carrier precoated wafer was impregnated with concentration gradients of Ti, Zr, Fe and La solution by Cavro dispensing from metal stock solutions vials to a microtiter plate followed by transferring replicas of the 8P Ti, 7P Zr, 8P Fe and 7P La gradients, respectively, onto the wafer (2.5 μl dispense volume per well). Fe and La were provided as their nitrates, Zr as the zirconyl nitrate and Ti as the ammonium titanyl oxalate. The wafer was dried at 70° C. for 10 minutes and then a 7P and 8P×2 gradient of Ru, as the nitrosyl nitrate was transferred from a microtiter plate to the wafer (2.5 μl dispense volume/well.) The wafer was dried at 70° C. for 10 minutes and then was uniformly coated with 2.5 μl/well of a Pt(NH 3 ) 2 (NO 2 ) 2 stock solution (1% Pt).

The wafer was dried at 70° C. for 10 minutes, calcined in air at 450° C. for 2 hours, then reduced in 5% H 2 /Ar at 450° C. for 2 hours. Seven internal standards were synthesized by spotting 2.5 μl Pt(NH 3 ) 2 (NO 2 ) 2 solution (1.0% Pt) into the corresponding first row/last column and center positions. See FIGS. 9A through 9G .

The reduced library was then screened in SMS for WGS activity with a H 2 /CO/CO 2 /H 2 O mixed feed at 250° C. and 300° C. The CO conversion versus CO 2 production results at 350° C. are presented in FIG. 9H . More detailed test results, such as, CO conversion, CO 2 production and CH 4 production at 350° C. for each of the 225 individual catalyst wells on the test wafer are presented in Table 3.

This set of experiments demonstrated active and selective WGS catalyst formulations of Pt—Ru—{Ti, Zr, Ti, Fe} compositions on the wafer.

›Example 10

A 4″ quartz wafer was precoated with zirconia carrier by repeated slurry dispensing zirconia powder (Norton XZ16052) onto the wafer. The slurry was composed of 1.5 g zirconia powder in 4 mL of a MEO/EG/H 2 O 40:30:30 mixture. A total of 3 μL of slurry was deposited on each spot.

The zirconia carrier precoated wafer was impregnated with 7P concentration gradients of Ti, Zr, V, Mo and Co and 8P concentration gradients of Ge, Sn, Sb, La and Ce by Cavro dispensing from metal stock solutions vials to a microtiter plate followed by transferring replicas of the gradients onto the wafer (2.5 μl dispense volume per well). Co, La and Ce were provided as their nitrates, Zr as the zirconyl nitrate, Ti as the ammonium titanyl oxalate, Sb as ammonium antimony oxalate, V, Ge and Sn as their oxalates and Mo as molybdic acid. The wafer was dried at 70° C. for 10 minutes and then a 7 and 8 point gradients of Fe, Ru and Rh were transferred from a microtiter plate to the wafer (2.5 μl dispense volume/well.) Fe and Rh were provided as their nitrates, Ru as the nitrosyl nitrate. The wafer was dried at 70° C. for 10 minutes and then was uniformly coated with 2.5 μl/well of a Pt(NH 3 ) 2 (NO 2 ) 2 stock solution (1% Pt).

The wafer was dried at 70° C. for 10 minutes, calcined in air at 450° C. for 2 hours, then reduced in 5% H 2 /Ar at 450° C. for 2 hours. Nine internal standards were synthesized by spotting 2.5 μl Pt(NH 3 ) 2 (NO 2 ) 2 solution (1.0% Pt) into the corresponding first row/last column positions. See FIGS. 10A through 10F .

The reduced library was then screened in SMS for WGS activity with a H 2 /CO/CO 2 /H 2 O mixed feed at 300° C. and 350° C. The CO conversion versus CO 2 production results at 300° C. and 350° C. are presented in FIGS. 10G , 10 H and 10 I. More detailed test results, such as, CO conversion, CO 2 production and CH 4 production at 250° C. and 300° C. for each of the 225 individual catalyst wells on the test wafer are presented in Table 4.

This set of experiments demonstrated active and selective WGS catalyst formulations of Pt—Ru—{Ti, Zr, V, Mo, Co, Ge, Sn, Sb, La, Ce} compositions on the wafer.

›Example 11

A 4″ quartz wafer was precoated with zirconia carrier by repeated slurry dispensing zirconia powder (Norton XZ16052) onto the wafer. The slurry was composed of 1.5 g zirconia powder in 4 mL of a MEO/EG/H 2 O 40:30:30 mixture. A total of 3 μL of slurry was deposited on each spot.

The zirconia carrier precoated wafer was impregnated with 5P concentration gradients of Co, Ru and Mo by Cavro dispensing from metal stock solutions vials to a microtiter plate followed by transferring replicas of the gradients onto the wafer (2.5 μl dispense volume per well). Co was provided as its nitrate, Mo as molybdic acid and Ru as the nitrosyl nitrate. The wafer was dried at 70° C. for 10 minutes.

The wafer was then impregnated with 5P concentration gradients of Ce, Co, Ru, La, Zr, Cu, Re and Ge. Ce was provided as its nitrate and as ammonium cerium(IV) nitrate; Co as its acetate and as sodium hexanitrocobaltate(III); Ru as potassium perruthenate, KRuO 4 , ruthenium nitrosyl acetate, Ru(NO)(OAc) 3 ; La and Cu as their nitrates; Zr as zirconyl nitrate and zirconyl acetate; Re as NH 4 ReO 4 ; and Ge as the oxalate.

The wafer was dried at 70° C. for 10 minutes and then was uniformly coated with 2.5 μl/well of a Pt(NH 3 ) 2 (NO 2 ) 2 stock solution (1% Pt).

The wafer was dried at 70° C. for 10 minutes, calcined in air at 350° C. for 2 hours, then reduced in 5% H 2 /Ar at 300° C. for 2 hours. Nine internal standards were synthesized by spotting 2.5 μl Pt(NH 3 ) 2 (NO 2 ) 2 solution (1.0% Pt) into the corresponding first row/last column positions. See FIGS. 11A through 11F .

The reduced library was then screened in SMS for WGS activity with a H 2 /CO/CO 2 /H 2 O mixed feed at 250° C. The CO conversion versus CO 2 production results at 250° C. are presented in FIG. 11G . More detailed test results, such as, CO conversion, CO 2 production and CH 4 production at 250° C. for each of the 225 individual catalyst wells on the test wafer are presented in Table 5.

This set of experiments demonstrated active and selective WGS catalyst formulations of Pt—Ru—{Co, Ce, Mo, Na, K, La, Zr, Re, Cu, Ge} compositions on the wafer.

›Example 12

Scale-up catalyst samples were prepared by using incipient wetness impregnation of 2.5 grams of ZrO 2 support (Norton, 80-120 mesh) which had been weighed into a 10-dram vial. Aqueous metal precursor salt solutions were then added in the order Ru, Co, Pt and Na. The precursor salt solutions are set forth in Table 7. Following each metal addition, the catalysts were dried at 80° C. overnight and then calcined in air as follows:

After Ru or Co addition—450° C. for 3 hours

After Pt addition—300° C. for 3 hours.

Following Na addition, the catalysts were calcined at 300° C. for 3 hours, and then the catalysts were reduced in-situ at 300° C. for 3 hours in a 10% H 2 /N 2 feed.

Catalyst Testing Conditions

Catalysts were tested in a fixed bed reactor. Approximately 0.15 g of catalyst was weighed and mixed with an equivalent mass of SiC. The mixture was loaded into a reactor and heated to reaction temperature. Reaction gases were delivered via mass flow controllers (Brooks) with water introduced with a metering pump (Quizix). The composition of the reaction mixture was as follows: H 2 50%, CO 10%, CO 2 10%, and H 2 O 30%. The reactant mixture was passed through a pre-heater before contacting the catalyst bed. Following reaction, the product gases were analyzed using a micro gas chromatograph (Varian). Compositional data on the space velocity diagrams are on a dry basis with water removed.

Testing Results

FIGS. 12A through 12C show the CO composition in the product stream following the scale-up testing at gas hour space velocities of 50,000, 100,000 and 150,000 h −1 . All materials showed WGS activity at the tested temperatures and space velocities as shown. Selectivies were all greater than 99% to CO 2 with the exception of catalyst sample 1001-8 (selectivity of 98.5% to CO 2 at GHSV=50,000 at 325° C.).

›Example 13

Scale-up catalyst samples were prepared by using incipient wetness impregnation of 0.75 grams of ZrO 2 support (Norton, 80-120 mesh) which had been weighed into a 10-dram vial. Aqueous metal precursor salt solutions were then added in the order Ru, Pt and one of Na, K, or Li. The precursor salt solutions were tetraammineplatinum (II) hydroxide (9.09% Pt (w/w)), ruthenium (III) nitrosylnitrate (1.5% Ru (w/v)), sodium hydroxide (3.0N), lithium hydroxide monohydrate (2.5M), and potassium hydroxide (13.92% K). All reagents were nominally research grade from Aldrich, Strem, or Alfa. Following each metal addition, the catalysts were dried at 80° C. overnight and then calcined in air as follows:

After Ru addition—450° C. for 3 hours

After Pt addition—300° C. for 3 hours

Following Na, K, or Li addition, the catalysts were calcined at 300° C. for 3 hours, and then the catalysts were reduced in-situ at 300° C. for 3 hours in a 10% H 2 /N 2 feed.

Catalyst Testing Conditions

Catalysts were tested in a fixed bed reactor. Approximately 0.15 g of catalyst was weighed and mixed with an equivalent mass of SiC. The mixture was loaded into a reactor and heated to reaction temperature. Reaction gases were delivered via mass flow controllers (Brooks) with water introduced with a metering pump (Quizix). The composition of the reaction mixture was as follows: H 2 50%, CO 10%, CO 2 10%, and H 2 O 30%. The reactant mixture was passed through a pre-heater before contacting the catalyst bed. Following reaction, the product gases were analyzed using a micro gas chromatograph (Varian Instruments, or Shimadzu). Compositional data on the performance diagram ( FIG. 13 ) is on a dry basis with water removed.

Testing Results

FIG. 13 shows the CO composition in the product stream following the scale-up testing at gas hour space velocities of 50,000 h −1 .

›Example 14

Scale-up catalyst samples were prepared by using incipient wetness impregnation of 0.75 grams of ZrO 2 support (Norton, 80-120 mesh) which had been weighed into a 10-dram vial. Aqueous metal precursor salt solutions were then added in the order: Ru, one of Y, Sc, or La, and Pt. The precursor salt solutions were tetraammineplatimum (II) hydroxide (9.09% Pt (w/w)), ruthenium (III) nitrosylnitrate (1.5% Ru), yttrium (III) nitrate (1.0M), scandium (III) nitrate (4.2% Sc), lanthanum (III) nitrate (1.0M), and potassium hydroxide (13.92% K). All reagents were nominally research grade from Aldrich, Strem, or Alfa. Following each metal addition, the catalysts were dried at 80° C. overnight and then calcined in air as follows:

After Ru addition—450° C. for 3 hours

After Pt addition—300° C. for 3 hours

After Y, Sc, or La addition—450° C. for 3 hours.

Following the final addition, the catalysts were reduced in-situ at 300° C. for 3 hours in a 10% H 2 /N 2 feed.

Catalyst Testing Conditions

Catalysts were tested in a fixed bed reactor. Approximately 0.15 g of catalyst was weighed and mixed with an equivalent mass of SiC. The mixture was loaded into a reactor and heated to reaction temperature. Reaction gases were delivered via mass flow controllers (Brooks) with water introduced with a metering pump (Quizix). The composition of the reaction mixture was as follows: H 2 50%, CO 10%, CO 2 10%, and H 2 O 30%. The reactant mixture was passed through a pre-heater before contacting the catalyst bed. Following reaction, the product gases were analyzed using a micro gas chromatograph (Varian Instruments, or Shimadzu). Compositional data on the performance diagram ( FIG. 14 ) is on a dry basis with water removed.

Testing Results

FIG. 14 shows the CO composition in the product stream following the scale-up testing at gas hour space velocities of 50,000 h −1 .

›Example 15

Scale-up catalyst samples were prepared by using incipient wetness impregnation of 0.75 grams of ZrO 2 support (Norton, 80-120 mesh) which had been weighed into a 10-dram vial. Aqueous metal precursor salt solutions were then added in the order: Ru, V, Pt, and finally Na. The precursor salt solutions were tetraammineplatinum (II) hydroxide solution (9.09% Pt (w/w)), ruthenium (III) nitrosylnitrate (1.5% Ru (w/v), vanadium citrate (1.0M), and sodium hydroxide (3.0 N). All starting reagents were nominally research grade from Aldrich, Strem, or Alfa. Following each metal addition, the catalysts were dried at 80° C. overnight and then calcined in air as follows:

After Pt addition—300° C. for 3 hours

After Ru addition—450° C. for 3 hours

After V addition—350° C. for 3 hours.

Following Na addition, the catalysts were calcined at 300° C. for 3 hours, and then the catalysts were reduced in-situ at 300° C. for 3 hours in a 10% H 21 N 2 feed.

Catalyst Testing Conditions

Catalysts were tested in a fixed bed reactor. Approximately 0.15 g of catalyst was weighed and mixed with an equivalent mass of SiC. The mixture was loaded into a reactor and heated to reaction temperature. Reaction gases were delivered via mass flow controllers (Brooks) with water introduced with a metering pump (Quizix). The composition of the reaction mixture was as follows: H 2 50%, CO 10%, CO 2 10%, and H 2 O 30%. The reactant mixture was passed through a pre-heater before contacting the catalyst bed. Following reaction, the product gases were analyzed using a micro gas chromatograph (Varian Instruments, or Shimadzu). Compositional data on the performance diagram ( FIG. 17 ) is on a dry basis with water removed.

Testing Results

FIG. 17 shows the CO composition in the product stream following the scale-up testing at a gas hour space velocity of 50,000 h −1 .

›Tables in the description — 8
TABLE 6 — Catalyst compositions
Catalyst ID% Ru% Co% Pt% Na
1001-010.50.565
1001-020.5165
1001-030.51.565
1001-0410.565
1001-051165
1001-0611.565
1001-071.50.565
1001-081.5165
1001-091.51.565
1001-101160
1001-111135
1001-121167.5
1001-130160
1001-140165
TABLE 8 — Catalyst Composition (mass ratio)
RowColSupportRuPtNaKLi
A10.9050.010.060.02500
A20.880.010.060.0500
A30.9050.010.0600.0250
A40.880.010.0600.050
A50.9050.010.06000.025
A60.880.010.06000.05
B10.9050.010.060.02500
B20.880.010.060.0500
B30.9050.010.0600.0250
B40.880.010.0600.050
B50.9050.010.06000.025
B60.880.010.06000.05
C10.8950.020.060.02500
C20.870.020.060.0500
C30.8950.020.0600.0250
C40.870.020.0600.050
C50.8950.020.06000.025
C60.870.020.06000.05
D10.8950.020.060.02500
D20.870.020.060.0500
D30.8950.020.0600.0250
D40.870.020.0600.050
D50.8950.020.06000.025
D60.870.020.06000.05
TABLE 9 — Catalyst Composition (mass ratio)
RowColSupportRuPtYScLa
A10.9050.010.060.02500
A20.880.010.060.0500
A30.9050.010.0600.0250
A40.880.010.0600.050
A50.9050.010.06000.025
A60.880.010.06000.05
B10.9050.010.060.02500
B20.880.010.060.0500
B30.9050.010.0600.0250
B40.880.010.0600.050
B50.9050.010.06000.025
B60.880.010.06000.05
C10.8950.020.060.02500
C20.870.020.060.0500
C30.8950.020.0600.0250
C40.870.020.0600.050
C50.8950.020.06000.025
C60.870.020.06000.05
D10.8950.020.060.02500
D20.870.020.060.0500
D30.8950.020.0600.0250
D40.870.020.0600.050
D50.8950.020.06000.025
D60.870.020.06000.05
TABLE 10 — Catalyst Compositions (mass ratio)
Cat IDSupportPtRuVNa
1006-0191.036.000.250.222.50
1006-0290.816.000.250.432.50
1006-0390.376.010.250.872.50
1006-0488.536.000.250.225.00
1006-0588.316.000.250.435.00
1006-0687.876.010.250.875.01
1006-0786.036.000.250.227.50
1006-0885.816.000.250.437.51
1006-0985.376.010.250.877.51
1006-1090.786.000.500.222.50
1006-1188.286.000.500.225.00
1006-1285.786.000.500.227.50
TABLE I
RCCOCONVH2OCONVCO2PRODCO2PERPRODCH4PRODPt1. 0%/ZrO2_stdLaNO33PtNH32NO22ZrONO32SUM_micromolsmol % Lamol % Ptmol % Zr
Temperature:
250 C.
realrealrealrealrealrealrealrealrealrealreal
1124.055420.35671.005936.87130.17850.12750000.127501000
12−1.72013.35390.0491.79720.006700000000
13−1.32782.24990.00090.0315−0.002600000000
14−1.2082.49580.0050.1823−0.003800000000
15−1.3966−0.66470.01380.5067−0.002400000000
16−0.857−0.8060.00890.3249−0.005800000000
1726.874716.71420.941634.5130.1510.12750000.127501000
18−0.17620.00010.01060.3868−0.007600000000
19−0.605−1.40540.00160.0598−0.008100000000
110−0.17055.1803−0.0005−0.0171−0.010800000000
1110.0287−2.3403−0.0261−0.9568−0.013400000000
112−0.3619−2.3753−0.0191−0.6997−0.010700000000
11326.913415.69850.920633.74490.14560.12750000.127501000
1140.2866−1.44360.01040.3794−0.000900000000
115−0.2691−2.5021−0.0098−0.3592−0.012500000000
11626.301515.07760.907133.24850.14220.12750000.127501000
2110.37977.56350.27149.94690.0465000.031900.031901000
2222.274213.62560.703825.79610.1014000.031900.031901000
2320.151811.80430.618122.65570.0925000.031900.031901000
2414.70687.52780.439616.11270.074000.031900.031901000
2512.57486.98120.353812.96910.0619000.031900.031901000
2612.57337.59020.372113.63750.065000.031900.031901000
273.96821.11570.10533.8610.0291000.031900.031901000
284.29021.52760.10173.7280.0316000.031900.031901000
2917.58599.85270.561120.56850.0868000.031900.031901000
2104.00560.79670.10733.93430.0337000.031900.031901000
2110.4511−1.4852−0.0262−0.96110.0142000.031900.031901000
2128.75153.13580.27049.90960.0534000.031900.031901000
2131.1667−0.42910.00280.10220.0172000.031900.031901000
2145.37883.0390.16616.08910.0402000.03190.6250.656904.8595.15
21513.81757.98620.453816.63290.075300.6250.031900.656995.154.850
2160.58920.0397−0.0171−0.6274−0.002100000000
3123.034114.94110.733526.88670.1082000.038700.038701000
3224.826816.09120.761127.89730.108000.038700.038701000
3321.031212.21630.661724.25450.0974000.038700.038701000
3415.30628.59940.456316.72470.0714000.038700.038701000
3513.18186.46990.377513.83810.0651000.038700.038701000
3614.47789.27130.424115.54370.0643000.038700.038701000
375.57173.34250.10293.7720.0251000.038700.038701000
386.82281.69230.15215.57330.0283000.038700.038701000
3918.242312.16780.560620.54680.0831000.038700.038701000
3106.70115.58570.16125.9070.033000.038700.038701000
3111.35291.3312−0.0328−1.20240.0065000.038700.038701000
3128.9886.94540.25449.32330.0421000.038700.038701000
3131.98821.6201−0.0124−0.45610.0102000.038700.038701000
3146.72074.88020.12834.70360.0288000.03870.6250.663705.8394.17
31513.12547.84130.414415.19120.062300.6250.038700.663794.175.830
3161.6968−0.6116−0.0065−0.2380.00700000000
4125.670119.51970.751427.54110.0986000.045500.045501000
4223.65316.92270.792829.06070.0984000.045500.045501000
4322.811816.18440.659324.1680.0919000.045500.045501000
4416.418210.78730.483717.7310.0754000.045500.045501000
4514.55647.51370.414615.19650.0579000.045500.045501000
4615.79339.82730.45316.60270.0657000.045500.045501000
476.17165.31920.13624.99350.0244000.045500.045501000
487.13863.68670.18226.67870.0338000.045500.045501000
4920.730313.37340.624822.90330.0886000.045500.045501000
4108.91313.1940.19827.26420.0334000.045500.045501000
4111.61891.2404−0.0525−1.926−0.0002000.045500.045501000
41210.74325.7820.283810.40220.045000.045500.045501000
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131013.55627.52860.430215.76760.0624000.10700.10701000
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151216.11389.12280.509418.67070.0732000.120700.120701000
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Temperature:
300 C.
1126.041213.67610.760827.43270.15920.12750000.127501000
121.97162.46860.00660.23860.009200000000
130.32290.3952−0.0391−1.40810.006200000000
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150.1730.5233−0.0449−1.61830.002400000000
160.36240.0747−0.0376−1.3546−0.003900000000
1726.15712.39340.79728.73830.16990.12750000.127501000
183.53330.2801−0.0585−2.108−0.010700000000
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1102.5920.129−0.014−0.5051−0.025300000000
111−3.1613−1.397−0.0273−0.98580.004300000000
112−0.5382−0.741−0.0195−0.7042−0.035200000000
11325.29312.93310.809729.1940.15970.12750000.127501000
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2416.039610.10970.651123.47680.109000.031900.031901000
2515.90410.21010.459716.57650.0626000.031900.031901000
2614.99159.86920.399514.40340.0662000.031900.031901000
276.21015.24730.18526.67630.0252000.031900.031901000
289.49725.83390.28310.2050.0496000.031900.031901000
2921.166913.91110.643523.20160.0932000.031900.031901000
2108.09325.89340.295810.66610.0493000.031900.031901000
2110.49060.3109−0.0754−2.71730.0004000.031900.031901000
21212.79798.960.44516.04390.0703000.031900.031901000
2131.76832.16210.02861.03260.0176000.031900.031901000
21411.50498.94830.360312.98990.0656000.03190.6250.656904.8595.15
21519.250911.52490.654123.58490.088100.6250.031900.656995.154.850
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377.53187.71460.21777.84950.0364000.038700.038701000
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31212.03169.00870.414314.93720.064000.038700.038701000
3132.37352.4270.04721.70030.0158000.038700.038701000
31410.0116.61840.432115.57840.078000.03870.6250.663705.8394.17
31517.128811.94180.693625.00810.101600.6250.038700.663794.175.830
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478.09935.73810.337412.1660.0503000.045500.045501000
4814.1199.81070.548919.79290.0801000.045500.045501000
4923.276214.90110.778628.07230.1033000.045500.045501000
41014.719410.43630.571820.61850.08000.045500.045501000
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41212.76568.83110.475917.15820.0689000.045500.045501000
4134.45021.3230.00720.25930.0135000.045500.045501000
41413.38449.47290.414114.93110.0687000.04550.6250.670506.7993.21
41520.701814.41530.679524.50020.093200.6250.045500.670593.216.790
41626.309312.56460.740526.69880.15610.12750000.127501000
5121.410514.40670.712525.68980.11000.052400.052401000
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5421.005713.80570.691124.92010.1153000.052400.052401000
5517.67212.23930.572820.65220.0902000.052400.052401000
5616.024511.79670.590221.27890.0941000.052400.052401000
578.6826.80220.3512.61850.0569000.052400.052401000
5816.204710.73130.565620.39210.0857000.052400.052401000
5921.072914.06490.797428.75150.124000.052400.052401000
51018.165512.10930.624922.53230.094000.052400.052401000
511−3.2789−1.88330.01730.625−0.017000.052400.052401000
51212.13767.65280.508518.33390.0689000.052400.052401000
5132.87191.60640.03981.43470.0232000.052400.052401000
51411.63137.19840.375613.54420.064000.05240.6250.677407.7392.27
51518.707712.34220.678424.45960.101700.6250.052400.677492.277.730
516−0.9230.64230.00240.0871−0.000500000000
6122.006314.10820.777228.02160.121000.059200.059201000
6223.752214.42510.818129.49830.1363000.059200.059201000
6323.734912.79680.77828.05180.1487000.059200.059201000
6421.768812.17690.748827.00060.1335000.059200.059201000
6518.618512.3680.629222.68620.1057000.059200.059201000
6617.43511.70250.645723.28330.0997000.059200.059201000
679.54967.40330.400514.44180.0656000.059200.059201000
6818.834512.6080.60221.70770.0895000.059200.059201000
6922.778314.57070.785828.33190.1268000.059200.059201000
61014.28899.33190.480817.33440.0626000.059200.059201000
611−1.4423−3.18980.00720.2597−0.0242000.059200.059201000
61214.63919.13430.516918.63930.0784000.059200.059201000
6131.39240.18490.10673.84580.0254000.059200.059201000
61412.44677.90110.4716.9470.0796000.05920.6250.684208.6591.35
61520.555112.48770.724126.10850.108600.6250.059200.684291.358.650
6161.82241.91940.02931.0577−0.00100000000
7120.179313.51570.714125.74830.1062000.06600.06601000
7223.919915.07150.792328.56910.1334000.06600.06601000
7324.092113.87240.770427.77940.1489000.06600.06601000
7422.488313.33330.747226.94010.1331000.06600.06601000
7518.375310.9670.693324.99640.1147000.06600.06601000
7619.163611.88820.59421.41790.0973000.06600.06601000
7711.62428.78290.35812.90750.0589000.06600.06601000
7818.946111.93040.607521.90570.0865000.06600.06601000
7920.872713.2680.858130.93910.1366000.06600.06601000
71019.746912.5330.62722.60840.0889000.06600.06601000
7110.2661−1.0746−0.0206−0.7417−0.0241000.06600.06601000
71214.96358.76740.511718.44850.0776000.06600.06601000
7132.4731.12590.09153.30040.0134000.06600.06601000
71410.49086.44360.409714.7740.0771000.0660.6250.69109.5590.45
71517.938711.31590.733526.4490.10900.6250.06600.69190.459.550
71624.664912.18830.789228.45640.17350.12750000.127501000
8120.407213.90720.703125.35210.1107000.072900.072901000
8223.229915.55330.807829.12720.1368000.072900.072901000
8324.302913.97970.779928.12030.1564000.072900.072901000
8422.211314.59750.749527.02560.1425000.072900.072901000
8518.157713.06920.694325.0340.1167000.072900.072901000
8616.458411.2410.679924.51350.1128000.072900.072901000
8711.31789.64520.432115.57950.0596000.072900.072901000
8820.833614.46050.645723.28150.0922000.072900.072901000
8923.34615.39420.834630.09410.1169000.072900.072901000
81020.328313.34670.696425.11020.1063000.072900.072901000
8116.00173.74470.23448.45230.0402000.072900.072901000
81214.06699.21730.57220.62460.0862000.072900.072901000
8130.4343−0.33790.10293.71030.0224000.072900.072901000
81412.91968.20410.468916.90540.0749000.07290.6250.6979010.4489.56
81520.302512.64720.661823.86390.100.6250.072900.697989.5610.440
8160.72730.7062−0.0175−0.63−0.008700000000
9119.086613.8010.695625.08050.1067000.079700.079701000
9223.401115.40220.806229.06770.1362000.079700.079701000
9324.263614.03560.806929.0940.1585000.079700.079701000
9423.061813.72040.760327.41220.137000.079700.079701000
9519.295312.33240.683824.65460.1191000.079700.079701000
9616.452411.69410.583321.0330.0966000.079700.079701000
978.81556.1930.408114.71540.0678000.079700.079701000
9818.342112.48230.649223.40940.095000.079700.079701000
9922.557115.42210.824129.71530.1201000.079700.079701000
91018.286313.13970.672424.24440.0988000.079700.079701000
911−1.5339−0.5868−0.0006−0.0218−0.0198000.079700.079701000
91213.96029.16930.554720.00220.0819000.079700.079701000
9131.18271.28490.11073.99160.0024000.079700.079701000
91410.27576.12880.396914.31060.0711000.07970.6250.7047011.3188.69
91519.409511.48490.73226.39180.111600.6250.079700.704788.6911.310
916−0.47460.30.06492.33890.010600000000
10119.615513.25920.715125.7840.1137000.086500.086501000
10224.425514.21140.845230.4740.1541000.086500.086501000
10325.116712.07230.822929.67060.1783000.086500.086501000
10423.936712.08670.830229.9340.1595000.086500.086501000
10520.49911.27720.694925.05610.1257000.086500.086501000
10618.427710.3420.65223.50770.1136000.086500.086501000
10710.68298.23310.494317.82120.0797000.086500.086501000
10821.035113.56970.693425.00250.1016000.086500.086501000
10923.354615.57240.831929.99610.1265000.086500.086501000
101020.273313.2060.722626.05470.1094000.086500.086501000
1011−2.2709−1.6818−0.003−0.1081−0.0191000.086500.086501000
101215.53949.1540.576720.79480.0875000.086500.086501000
10132.3380.69580.11664.2040.0286000.086500.086501000
101411.83717.05020.448516.17020.0781000.08650.6250.7115012.1687.84
101518.964311.90520.715925.81250.108200.6250.086500.711587.8412.160
101623.368312.03280.779228.09620.15770.12750000.127501000
11118.680211.57420.679624.50450.1057000.093300.093301000
11225.022213.98630.803928.98520.1512000.093300.093301000
11325.639413.12150.812229.28380.1687000.093300.093301000
11424.674414.51830.780228.1320.1536000.093300.093301000
11519.329512.61350.68524.69950.1225000.093300.093301000
11618.766511.78230.649123.40440.1112000.093300.093301000
11712.04598.2620.466916.83550.0746000.093300.093301000
11819.735612.29240.722526.05260.1072000.093300.093301000
11923.349414.41310.851830.71390.1298000.093300.093301000
111019.132312.68490.709425.57790.105000.093300.093301000
1111−0.9895−0.2695−0.004−0.1435−0.0127000.093300.093301000
111214.830410.19630.58220.98670.0899000.093300.093301000
11132.2082.55870.10293.71070.0204000.093300.093301000
111410.97636.42660.391814.12580.0707000.09330.6250.7183012.9987.01
111518.190610.66210.69825.16850.10600.6250.093300.718387.0112.990
1116−0.9643−0.71610.03921.4143−0.004800000000
12115.458810.18330.595321.46320.1001000.100200.100201000
12224.731913.60120.847830.56880.161000.100200.100201000
12326.891212.87580.800828.87540.1851000.100200.100201000
12424.655812.92160.819629.55040.1758000.100200.100201000
12520.526712.10180.721526.01390.1329000.100200.100201000
12618.428711.44810.681124.55890.1172000.100200.100201000
12713.43939.3720.490917.69950.0793000.100200.100201000
12821.080913.99110.751227.08750.111000.100200.100201000
12923.77215.04480.851730.70840.1339000.100200.100201000
121019.809512.89120.738126.61370.1093000.100200.100201000
1211−1.4941−1.399−0.0134−0.4846−0.018000.100200.100201000
121216.074310.65390.597721.55070.092000.100200.100201000
12132.05811.63590.11053.9860.0298000.100200.100201000
121410.7446.47610.418415.08520.076000.10020.6250.7252013.8186.19
121518.284310.32650.697525.14920.11200.6250.100200.725286.1913.810
1216−0.4083−1.10830.06322.28050.0200000000
13117.378411.36590.653123.54710.1026000.10700.10701000
13224.873513.96980.864531.17140.1634000.10700.10701000
13326.73113.23790.830429.93970.1799000.10700.10701000
13425.012513.32080.819929.56260.1706000.10700.10701000
13520.995912.56370.725.23890.1263000.10700.10701000
13619.785913.06430.638423.01820.1112000.10700.10701000
13712.77018.64840.473717.07860.0821000.10700.10701000
13819.979812.36430.742126.75610.1113000.10700.10701000
13923.900415.42620.836830.17250.1326000.10700.10701000
131020.168814.3950.768527.70930.1134000.10700.10701000
1311−1.5531−0.21310.00030.0093−0.0139000.10700.10701000
131216.26110.95190.600721.660.0928000.10700.10701000
13132.15791.70260.13074.71310.0287000.10700.10701000
131410.34497.08810.401314.46970.0725000.1070.6250.732014.6285.38
131517.990612.36760.689224.84850.105700.6250.10700.73285.3814.620
131624.929612.31070.785328.31350.18950.12750000.127501000
14119.700613.8950.719625.94470.1225000.113800.113801000
14224.62813.78640.864531.17150.1715000.113800.113801000
14327.060312.72110.822629.66050.2007000.113800.113801000
14424.971912.05140.8329.92590.1896000.113800.113801000
14520.066911.34860.733426.44310.1416000.113800.113801000
14619.314811.31160.707325.50330.128000.113800.113801000
14713.06989.24960.517818.67030.0862000.113800.113801000
14821.482514.07660.763427.52630.1153000.113800.113801000
14923.837915.34590.860731.03470.1367000.113800.113801000
141021.527813.89280.785128.30810.1137000.113800.113801000
1411−2.1621−1.2165−0.0091−0.3271−0.0078000.113800.113801000
141217.304111.57250.64623.29230.0958000.113800.113801000
14131.9492.05650.08963.23020.028000.113800.113801000
14149.36896.50870.344912.43530.0636000.11380.6250.7388015.4184.59
141518.432412.02760.691424.92970.106700.6250.113800.738884.5915.410
1416−0.7558−0.68980.01650.59340.001100000000
15118.147211.94180.698725.19390.1082000.120700.120701000
15224.763113.66040.864131.15630.1697000.120700.120701000
15326.121111.82270.83430.07050.2037000.120700.120701000
15424.567711.95520.792328.56920.1875000.120700.120701000
15520.089811.4740.719325.93710.144000.120700.120701000
15619.367511.66130.682224.59720.1254000.120700.120701000
15712.99118.34150.512418.4770.0905000.120700.120701000
15819.485112.90130.71125.63530.1146000.120700.120701000
15923.607714.54620.861831.0740.1436000.120700.120701000
151021.258913.77350.792228.56240.1207000.120700.120701000
1511−1.3789−1.32030.00190.0686−0.0106000.120700.120701000
151216.836610.34980.648923.39530.1014000.120700.120701000
15132.53740.80670.1384.97420.0357000.120700.120701000
151411.13967.09150.408814.7410.0773000.12070.6250.7457016.1883.82
151517.542610.49440.704525.40190.113600.6250.120700.745783.8216.180
1516−0.4051−0.44440.07292.62940.011200000000
16115.07258.09940.586921.16130.0985000.127500.127501000
16224.678.68580.700925.27160.2051000.127500.127501000
16327.42786.30990.70725.49230.2645000.127500.127501000
16424.80326.11860.696725.12170.2372000.127500.127501000
16520.94797.8540.670724.18430.1784000.127500.127501000
16619.43469.9720.689324.85480.1408000.127500.127501000
16714.31448.93150.518318.68640.0889000.127500.127501000
16820.644913.62050.702325.32170.1142000.127500.127501000
16924.256114.7850.85430.79190.1506000.127500.127501000
161021.048614.07330.699525.22090.1084000.127500.127501000
1611−2.2759−0.08460.04131.48790.024000.127500.127501000
161217.142310.75180.586921.16130.0898000.127500.127501000
16133.00922.08830.20697.45860.0432000.127500.127501000
161412.87147.60830.514218.54150.1069000.12750.6250.7525016.9483.06
161517.58419.94810.629422.69460.12900.6250.127500.752583.0616.940
161625.068611.18050.828829.8840.18220.12750000.127501000
TABLE II — Tem- pera- ture 300
C.Pt1.
RCCOCONVH2OCONVCO2PRODCO2PERPRODCH4PROD0%/ZrO2_stdCeNO33CoNO32LaNO33
realrealrealrealrealrealrealrealrealrealreal
1115.798612.23530.744326.69890.20250.1275000
12−1.6605−0.40150.17466.2620.04270000
13−3.3432−2.87390.09093.25910.02490000
14−1.5889−0.75810.03271.17250.01010000
15−2.0416−3.6101−0.0004−0.01460.00610000
16−1.3072−0.29280.00610.22030.00370000
1724.164114.67960.719425.80570.20920.1275000
181.27065.11320.03831.37440.00430000
19−1.11390.6947−0.0229−0.8203−0.00340000
110−0.9348−1.4821−0.0293−1.0513−0.00480000
111−1.0936−1.3466−0.0321−1.1501−0.00570000
112−0.8945−2.7312−0.0352−1.2629−0.00510000
11325.712217.27090.74126.58140.19610.1275000
1141.32160.88550.02780.99690.00050000
115−0.33281.9579−0.047−1.6868−0.01160000
116−0.63883.8351−0.0427−1.5333−0.01280000
2132.8134−1.39540.499117.90180.4047000.1250
2233.7634−0.72130.562720.18520.398000.19640
2335.6619−2.28730.559220.05820.4282000.26790
2437.14381.7180.557620.00060.441000.33930
2533.86843.05610.642223.03650.3684000.41070
2638.7621−0.72050.598321.46230.4682000.48210
2740.2724−3.0550.62622.45630.4782000.55360
2839.72170.39380.624822.41110.4722000.6250
2942.5893−5.46270.582120.88090.533600.12500
21042.9319−4.38940.550319.74030.545700.208300
21144.9469−2.56440.472816.95860.590400.291700
21243.7075−3.18940.509618.27960.575900.37500
21343.5857−5.99220.542619.46170.569500.458300
21440.94171.34790.653823.45240.479200.541700
21540.16792.04860.573920.58690.501100.62500
2161.14321.10080.01950.70010.00420000
3130.0331.41970.528918.97240.3491000.1250
3230.58457.64160.510618.31710.3379000.19640
3331.55586.89850.584620.97110.3398000.26790
3434.6039−1.04780.641323.00550.3861000.33930
3534.4051.08270.659223.64440.3741000.41070
3635.41458.03880.603221.63880.3881000.48210
3737.41542.89290.646723.19680.419000.55360
3839.15713.15650.619722.22770.4582000.6250
3939.1656−1.04810.620422.25370.453600.12500
31040.5621−2.68680.618722.19370.479700.208300
31139.37992.83960.622522.32810.442100.291700
31238.91060.60950.654523.47660.434300.37500
31338.30871.3870.660323.68490.423500.458300
31435.45297.71180.704425.26880.343400.541700
31535.37354.40280.724926.0020.353600.62500
3162.21862.10220.00590.2132−0.00540000
4127.79392.05270.61822.16790.2794000.1250
4228.73456.19640.59121.20040.2887000.19640
4330.39744.43380.678124.32270.2923000.26790
4430.847610.90690.638222.89130.2878000.33930
4530.67576.37340.721825.89110.2804000.41070
4632.98358.03510.719825.81790.3086000.48210
4735.28677.36410.696624.98630.3575000.55360
4837.12873.74130.700425.12370.3921000.6250
4936.56712.4660.713325.58630.384500.12500
41035.67616.06190.699125.07590.365200.208300
41134.94286.28460.794228.48740.326800.291700
41237.10321.90470.706725.35050.388200.37500
41334.43478.23120.744726.71170.32400.458300
41434.2079.1920.777927.90220.306100.541700
41533.63936.21520.73326.29370.327600.62500
41629.0372.50620.758927.22080.22490.1275000
5124.60879.22630.603721.65520.2131000.1250
5224.40756.91580.672324.11570.2000.19640
5324.758711.57480.658223.61050.192000.26790
5426.058310.82270.727226.08390.2021000.33930
5526.788311.45380.743926.6840.2078000.41070
5629.727612.18320.691224.79340.2622000.48210
5732.39898.38660.73626.40150.299000.55360
5835.67746.0610.704425.26780.3669000.6250
5932.37988.42980.743226.65990.293300.12500
51031.9094−3.01930.832929.87650.286400.208300
51130.444711.10840.766527.49440.256100.291700
51231.99449.23810.780928.0120.274400.37500
51330.715812.70320.799528.67880.239600.458300
51431.233510.23730.745826.75080.262800.541700
51529.665111.06490.841230.1760.225600.62500
5162.0212.8590.02410.86320.00250000
6121.995911.54190.640222.96430.1567000.1250
6223.240111.65650.651923.38240.1671000.19640
6323.445610.57870.647223.21420.1684000.26790
6424.30712.70230.69925.07310.1689000.33930
6525.112714.86540.704825.28010.1705000.41070
6627.352815.40640.69524.92860.2121000.48210
6727.723113.62720.729826.17730.2096000.55360
6830.918312.39630.710925.50050.2709000.6250
6931.59149.26330.809929.05130.266500.12500
61028.592714.82720.745726.75020.21800.208300
61129.351414.85130.75727.15370.230800.291700
61228.981617.41890.762927.36410.212800.37500
61328.94115.91950.83830.05930.197400.458300
61427.416318.99870.759927.25850.20300.541700
61528.744911.1470.81929.3780.212100.62500
6160.98391.6606−0.0142−0.5093−0.0040000
7118.913512.94120.604221.67170.1144000.1250
7220.798412.64540.639222.92690.1259000.19640
7321.330914.04420.671924.10210.1203000.26790
7423.317912.62440.710125.47070.1495000.33930
7522.31115.91690.698625.05980.1228000.41070
7624.939515.92250.71725.72050.1568000.48210
7727.21813.63460.75727.15470.194000.55360
7829.137413.37520.767127.51720.223000.6250
7927.282314.91730.782328.05980.1800.12500
71026.712917.03880.771827.68460.164100.208300
71127.892814.0180.813629.18320.180200.291700
71227.621614.2890.832329.85360.17100.37500
71327.178915.55660.815529.25350.173600.458300
71426.957615.53960.819229.38650.166900.541700
71526.837818.09590.804328.85220.153500.62500
7160.8467−0.7636−0.0188−0.67550.00490000
8119.796310.19890.667323.93690.121000.1250
8221.044112.12920.677124.28680.1148000.19640
8321.582610.35890.716525.70090.1225000.26790
8422.541911.33140.74826.83280.1302000.33930
8521.691515.80690.700225.11580.1194000.41070
8623.154915.28240.745226.72990.134000.48210
8725.514914.2440.713325.58810.1741000.55360
8830.535311.78230.777627.89420.2489000.6250
8927.388511.5110.82829.70130.179500.12500
81025.717317.9220.775427.81310.147800.208300
81126.414413.42640.820229.42170.163300.291700
81227.70513.00970.886631.80260.164100.37500
81325.99517.48870.796328.56490.154700.458300
81426.468116.95540.7928.33840.153600.541700
81526.467813.39550.816229.27690.15900.62500
8160.99661.4271−0.0301−1.07940.0010000
9131.93470.08780.585621.0050.35590000.125
9231.10114.46460.636322.82440.3130000.2083
9330.30855.0380.644923.13380.2920000.2917
9434.5542−0.3850.642823.05920.36960000.375
9532.81742.58430.68824.67780.32710000.4583
9633.26723.46320.708925.42930.31930000.5417
9733.34066.78180.754627.06670.30650000.625
9830.142510.14640.806828.940.23110.1275000
9926.746513.61260.79728.58810.171800.12500
91025.771914.00360.799428.67610.151800.208300
91126.530912.46690.845130.31280.155900.291700
91225.991618.14070.785628.18150.141200.37500
91327.534712.21790.882331.650.162100.458300
91427.44913.42720.878531.5140.159600.541700
91527.203112.79340.865931.05870.1600.62500
9161.42630.8064−0.0206−0.738−0.0080000
10132.3674−1.49140.572420.5340.3640000.125
10229.92134.60790.650423.33020.29060000.2083
10331.28613.80320.681324.43970.29910000.2917
10430.38736.03110.719225.79910.2670000.375
10528.90026.77080.720425.8410.24110000.4583
10632.02394.81990.694924.92520.30290000.5417
10730.55725.63880.724525.98780.27060000.625
10840.4396−5.51160.61622.09450.47790000
10936.6242−0.35140.686124.61230.38910000
101036.45272.48380.674324.18670.37090000
101141.5385−5.89090.562120.16190.49890000
101240.6949−2.47050.596921.41120.47620000
101342.2576−5.71260.557620.00140.51990000
101441.6714−3.62750.560520.10360.51390000
101542.1852−8.24090.564220.23850.53990000
101629.060811.88270.759127.22820.21280.1275000
11128.5929−0.55060.621122.2790.29560000.125
11229.76862.4270.658323.61240.30090000.2083
11327.90316.22260.710525.48450.23570000.2917
11427.78595.67430.772227.69910.22330000.375
11528.11847.27720.774127.76910.21830000.4583
11629.74116.35050.73926.50980.25660000.5417
11728.920910.69110.758927.22150.21760000.625
11838.2687−0.48750.636322.82330.42630000
11936.09721.15340.678224.32670.38580000
111037.16770.27630.684724.56060.38850000
111136.4236−0.17790.717825.74810.37640000
111236.17861.77640.714125.61490.37170000
111336.89220.62620.731726.24520.37980000
111437.7602−1.13680.672824.1330.40750000
111537.56470.03230.631422.64710.41370000
11162.1619−0.43790.00030.01240.00180000
12126.47043.85730.637322.86180.2440000.125
12225.1238.10440.689424.72890.19740000.2083
12325.000611.66910.675424.22660.17930000.2917
12425.74969.0180.727526.0940.18580000.375
12526.839.61730.740226.55070.19750000.4583
12627.88189.05270.728826.14270.22130000.5417
12727.19328.88630.735226.37140.20040000.625
12833.31094.61110.695624.9520.32330000
12934.24331.33750.687424.6570.34110000
121033.54554.52520.686824.63460.32330000
121133.73822.66620.685624.59450.33780000
121232.24214.41520.706625.34440.30560000
121332.12764.45820.723525.95180.29310000
121433.67654.23810.688624.69960.33530000
121532.80471.02220.667223.93220.3350000
12160.201−6.0934−0.0375−1.3439−0.00820000
13123.62857.2460.639222.92880.18840000.125
13224.8869.75620.707225.36830.18590000.2083
13324.862412.42650.696124.96910.17230000.2917
13424.982610.67220.736526.41710.17540000.375
13525.730512.18430.773227.73540.17080000.4583
13625.674713.21130.736626.42310.16870000.5417
13726.097611.70180.769427.59730.1720000.625
13830.44458.59990.733526.30990.25690000
13930.28389.69660.726326.05420.25490000
131030.45988.760.770927.65380.25420000
131130.34139.69560.729326.15940.24870000
131230.48059.60420.738426.4870.25670000
131330.78668.48940.726426.05770.25940000
131430.04748.31880.745226.73230.25230000
131529.14928.71920.72225.90010.24220000
13160.1828−0.1024−0.0281−1.0092−0.00710000
14122.27228.72440.64523.13790.16950000.125
14222.523410.89310.701325.15440.15290000.2083
14323.296610.46740.7326.18420.15150000.2917
14423.065711.13110.720525.84320.14450000.375
14523.514910.96620.736126.40530.14540000.4583
14624.286210.97260.750326.91420.15690000.5417
14724.505310.88210.762127.33790.15070000.625
14827.30289.27840.691824.81370.21180000
14927.50769.69230.708925.42690.21490000
141028.3349.57110.735326.37520.22330000
141127.099610.26480.705225.29430.2050000
141227.4410.24540.747826.82520.20750000
141327.117410.88530.721825.89250.19980000
141427.70498.97470.732626.27730.21610000
141526.61739.11560.703125.22210.20440000
14160.0041−1.9313−0.0371−1.3316−0.01490000
15121.33277.97020.681224.43610.14570000.125
15222.540610.74330.694124.8970.1640000.2083
15323.339512.68570.728626.13380.15080000.2917
15422.509411.04890.698825.06450.15550000.375
15524.031911.57710.753327.02230.15590000.4583
15623.712713.44410.742526.63230.14730000.5417
15723.904413.61390.7426.54310.14630000.625
15827.30938.61870.687924.67570.22670000
15925.86069.12890.687424.65660.20420000
151027.51469.5420.723925.9680.21430000
151126.870911.72850.718525.77260.19280000
151227.189.73530.752626.99520.20760000
151326.135511.70910.738526.49150.1930000
151426.44810.10890.738926.5040.19510000
151525.072311.12570.71725.71980.18170000
15160.17160.3824−0.0242−0.8681−0.01570000
16118.43839.13020.599921.51880.11410000.125
16219.85834.02530.457816.42030.19980000.2083
16319.59444.93170.482317.29950.18540000.2917
16420.60056.40560.53519.18920.19020000.375
16520.74889.22720.622522.32940.160000.4583
16622.02249.98610.69624.96470.15750000.5417
16722.633710.24290.690224.75690.15650000.625
16825.05327.01890.670124.03790.21480000
16924.72996.56060.612421.96880.21830000
161024.72776.80820.575320.63490.22290000
161124.32876.23670.577920.73090.220000
161223.46545.49510.553319.84590.21960000
161324.68996.41640.620322.25220.21610000
161423.61553.8360.537919.29450.23240000
161522.19055.03370.536419.23950.2120000
161627.25079.6040.805928.90670.20140.1275000
Tem-
pera-
ture
300
C.PtNH32NO22mol %mol %
R(unstabilized)RuNONO33ZrONO32SUM_micromolsmol % Cemol % Comol % LaPtmol % RuZr
realrealrealreal
10000.127500010000
10000000000
10000000000
10000000000
10000000000
10000000000
10000.127500010000
10000000000
10000000000
10000000000
10000000000
10000000000
10000.127500010000
10000000000
10000000000
10000000000
20.12750.061800.3143039.77040.5619.670
20.12750.061800.3857050.92033.0516.020
20.12750.061800.4572058.59027.8913.520
20.12750.061800.5286064.19024.1211.690
20.12750.061800.6068.45021.2510.30
20.12750.061800.6715071.81018.999.210
20.12750.061800.7429074.52017.168.320
20.12750.061800.8143076.75015.667.590
20.12750.061800.314339.770040.5619.670
20.12750.061800.397652.390032.0615.540
20.12750.061800.48160.640026.5112.850
20.12750.061800.564366.450022.5910.950
20.12750.061800.647670.770019.699.540
20.12750.061800.73174.10017.448.460
20.12750.061800.814376.750015.667.590
20000000000
30.12750.053600.3061040.84041.6617.50
30.12750.053600.3775052.03033.7714.190
30.12750.053600.4489059.67028.411.930
30.12750.053600.5204065.2024.510.30
30.12750.053600.5918069.4021.549.050
30.12750.053600.6632072.7019.228.080
30.12750.053600.7346075.35017.367.290
30.12750.053600.8061077.54015.826.650
30.12750.054700.307240.680041.517.820
30.12750.054700.390653.340032.6414.020
30.12750.054700.473961.540026.911.550
30.12750.054700.557267.290022.889.820
30.12750.054700.640671.550019.98.550
30.12750.054700.723974.820017.617.560
30.12750.054700.807277.420015.796.780
30000000000
40.12750.045300.2978041.97042.8115.220
40.12750.045300.3693053.2034.5312.280
40.12750.045300.4407060.78028.9310.290
40.12750.045300.5121066.25024.98.850
40.12750.045300.5835070.38021.857.770
40.12750.045300.655073.61019.476.920
40.12750.045300.7264076.21017.556.240
40.12750.045300.7978078.34015.985.680
40.12750.047700.300241.640042.4715.880
40.12750.047700.383554.320033.2412.430
40.12750.047700.466962.480027.3110.210
40.12750.047700.550268.160023.178.670
40.12750.047700.633572.350020.137.530
40.12750.047700.716975.560017.796.650
40.12750.047700.800278.110015.935.960
40000.127500010000
50.12750.037100.2896043.16044.0312.810
50.12750.037100.361054.41035.3210.270
50.12750.037100.4324061.94029.488.580
50.12750.037100.5039067.34025.37.360
50.12750.037100.5753071.39022.166.450
50.12750.037100.6467074.55019.715.730
50.12750.037100.7182077.08017.755.160
50.12750.037100.7896079.16016.154.70
50.12750.040600.293142.640043.513.860
50.12750.040600.376555.340033.8710.790
50.12750.040600.459863.440027.738.830
50.12750.040600.543169.050023.487.480
50.12750.040600.626573.160020.356.480
50.12750.040600.709876.310017.965.720
50.12750.040600.793178.80016.085.120
50000000000
60.12750.028800.2813044.43045.3210.250
60.12750.028800.3528055.68036.148.180
60.12750.028800.4242063.14030.066.80
60.12750.028800.4956068.46025.725.820
60.12750.028800.5671072.43022.485.090
60.12750.028800.6385075.51019.974.520
60.12750.028800.7099077.98017.964.060
60.12750.028800.7813079.99016.323.690
60.12750.033600.286143.70044.5711.730
60.12750.033600.369456.40034.529.080
60.12750.033600.452764.430028.167.410
60.12750.033600.536169.960023.786.260
60.12750.033600.6194740020.585.420
60.12750.033600.702777.080018.144.780
60.12750.033600.786179.510016.224.270
60000000000
70.12750.020600.2731045.77046.697.540
70.12750.020600.3445057.01037.015.980
70.12750.020600.416064.39030.654.950
70.12750.020600.4874069.61026.164.230
70.12750.020600.5588073.5022.823.690
70.12750.020600.6302076.5020.233.270
70.12750.020600.7017078.89018.172.940
70.12750.020600.7731080.84016.492.670
70.12750.026500.27944.80045.79.50
70.12750.026500.362357.50035.197.310
70.12750.026500.445765.450028.615.940
70.12750.026500.52970.890024.15.010
70.12750.026500.612374.850020.824.330
70.12750.026500.695777.860018.333.810
70.12750.026500.77980.230016.373.40
70000000000
80.12750.012400.2649047.19048.144.670
80.12750.012400.3363058.41037.913.680
80.12750.012400.4077065.7031.273.030
80.12750.012400.4791070.81026.612.580
80.12750.012400.5506074.6023.162.250
80.12750.012400.622077.51020.51.990
80.12750.012400.6934079.83018.391.780
80.12750.012400.7649081.71016.671.620
80.12750.019400.271945.970046.897.140
80.12750.019400.355358.640035.895.470
80.12750.019400.438666.50029.074.430
80.12750.019400.521971.850024.433.720
80.12750.019400.605375.730021.073.210
80.12750.019400.688678.660018.522.820
80.12750.019400.771980.970016.522.520
80000000000
90.12750.061800.31430039.7740.5619.670
90.12750.061800.39760052.3932.0615.540
90.12750.061800.4810060.6426.5112.850
90.12750.061800.56430066.4522.5910.950
90.12750.061800.64760070.7719.699.540
90.12750.061800.7310074.117.448.460
90.12750.061800.81430076.7515.667.590
90000.127500010000
90.12750.012400.264947.190048.144.670
90.12750.012400.348259.830036.623.550
90.12750.012400.431567.590029.552.860
90.12750.012400.514972.830024.762.40
90.12750.012400.598276.620021.312.070
90.12750.012400.681579.480018.711.810
90.12750.012400.764981.710016.671.620
90000000000
100.12750.054700.30720040.6841.517.820
100.12750.054700.39060053.3432.6414.020
100.12750.054700.47390061.5426.911.550
100.12750.054700.55720067.2922.889.820
100.12750.054700.64060071.5519.98.550
100.12750.054700.72390074.8217.617.560
100.12750.054700.80720077.4215.796.780
100.12750.06180.1250.314300040.5619.6739.77
100.12750.06180.19640.385700033.0516.0250.92
100.12750.06180.26790.457200027.8913.5258.59
100.12750.06180.33930.528600024.1211.6964.19
100.12750.06180.41070.600021.2510.368.45
100.12750.06180.48210.671500018.999.2171.81
100.12750.06180.55360.742900017.168.3274.52
100.12750.06180.6250.814300015.667.5976.75
100000.127500010000
110.12750.047700.30020041.6442.4715.880
110.12750.047700.38350054.3233.2412.430
110.12750.047700.46690062.4827.3110.210
110.12750.047700.55020068.1623.178.670
110.12750.047700.63350072.3520.137.530
110.12750.047700.71690075.5617.796.650
110.12750.047700.80020078.1115.935.960
110.12750.05360.1250.306100041.6617.540.84
110.12750.05360.19640.377500033.7714.1952.03
110.12750.05360.26790.448900028.411.9359.67
110.12750.05360.33930.520400024.510.365.2
110.12750.05360.41070.591800021.549.0569.4
110.12750.05360.48210.663200019.228.0872.7
110.12750.05360.55360.734600017.367.2975.35
110.12750.05360.6250.806100015.826.6577.54
110000000000
120.12750.040600.29310042.6443.513.860
120.12750.040600.37650055.3433.8710.790
120.12750.040600.45980063.4427.738.830
120.12750.040600.54310069.0523.487.480
120.12750.040600.62650073.1620.356.480
120.12750.040600.70980076.3117.965.720
120.12750.040600.79310078.816.085.120
120.12750.04530.1250.297800042.8115.2241.97
120.12750.04530.19640.369300034.5312.2853.2
120.12750.04530.26790.440700028.9310.2960.78
120.12750.04530.33930.512100024.98.8566.25
120.12750.04530.41070.583500021.857.7770.38
120.12750.04530.48210.65500019.476.9273.61
120.12750.04530.55360.726400017.556.2476.21
120.12750.04530.6250.797800015.985.6878.34
120000000000
130.12750.033600.28610043.744.5711.730
130.12750.033600.36940056.434.529.080
130.12750.033600.45270064.4328.167.410
130.12750.033600.53610069.9623.786.260
130.12750.033600.6194007420.585.420
130.12750.033600.70270077.0818.144.780
130.12750.033600.78610079.5109392816.224.270
130.12750.03710.1250.289600044.0312.8143.16
130.12750.03710.19640.36100035.3210.2754.41
130.12750.03710.26790.432400029.488.5861.94
130.12750.03710.33930.503900025.37.3667.34
130.12750.03710.41070.575300022.166.4571.39
130.12750.03710.48210.646700019.715.7374.55
130.12750.03710.55360.718200017.755.1677.08
130.12750.03710.6250.789600016.154.779.16
130000000000
140.12750.026500.2790044.845.79.50
140.12750.026500.36230057.535.197.310
140.12750.026500.44570065.4528.615.940
140.12750.026500.5290070.8924.15.010
140.12750.026500.61230074.8520.824.330
140.12750.026500.69570077.8618.333.810
140.12750.026500.7790080.2316.373.40
140.12750.02880.1250.281300045.3210.2544.43
140.12750.02880.19640.352800036.148.1855.68
140.12750.02880.26790.424200030.066.863.14
140.12750.02880.33930.495600025.725.8268.46
140.12750.02880.41070.567100022.485.0972.43
140.12750.02880.48210.638500019.974.5275.51
140.12750.02880.55360.709900017.964.0677.98
140.12750.02880.6250.781300016.323.6979.99
140000000000
150.12750.019400.27190045.9746.897.140
150.12750.019400.35530058.6435.895.470
150.12750.019400.43860066.529.074.430
150.12750.019400.52190071.8524.433.720
150.12750.019400.60530075.7321.073.210
150.12750.019400.68860078.6618.522.820
150.12750.019400.77190080.9716.522.520
150.12750.02060.1250.273100046.697.5445.77
150.12750.02060.19640.344500037.015.9857.01
150.12750.02060.26790.41600030.654.9564.39
150.12750.02060.33930.487400026.164.2369.61
150.12750.02060.41070.558800022.823.6973.5
150.12750.02060.48210.630200020.233.2776.5
150.12750.02060.55360.701700018.172.9478.89
150.12750.02060.6250.773100016.492.6780.84
150000000000
160.12750.012400.26490047.1948.144.670
160.12750.012400.34820059.8336.623.550
160.12750.012400.43150067.5929.552.860
160.12750.012400.51490072.8324.762.40
160.12750.012400.59820076.6221.312.070
160.12750.012400.68150079.4818.711.810
160.12750.012400.76490081.7116.671.620
160.12750.01240.1250.264900048.144.6747.19
160.12750.01240.19640.336300037.913.6858.41
160.12750.01240.26790.407700031.273.0365.7
160.12750.01240.33930.479100026.612.5870.81
160.12750.01240.41070.550600023.162.2574.6
160.12750.01240.48210.62200020.51.9977.51
160.12750.01240.55360.693400018.391.7879.83
160.12750.01240.6250.764900016.671.6281.71
160000.127500010000
TABLE III — Tem- pera- ture: 350
C.Pt1. 0%/
RCCOCONVH2OCONVCO2PRODCO2PERPRODCH4PRODZrO2_stdFeNO33LaNO33NH42TiOOX2
realrealrealrealrealrealrealrealrealrealreal
1120.74134.54530.403714.28730.28320.1275000
121.05983.22010.04611.63260.00820000
130.36963.20090.02090.7387−0.00140000
14−1.0203−0.91110.03651.29250.00970000
15−2.8069−1.4712−0.0045−0.15940.00350000
161.26990.76980.02670.9456−0.00250000
1722.82320.12190.384613.61140.29650.1275000
180.42520.14010.05331.88560.00720000
191.4669−0.5073−0.0007−0.02610.00320000
1102.0773−1.1689−0.0485−1.7180.00950000
111−0.8957−0.9498−0.0091−0.3230.00310000
112−0.3021−1.8060.00830.29420.01110000
11325.99740.73340.350512.40370.28940.1275000
1141.29680.9153−0.0072−0.2552−0.00330000
1150.893−1.0793−0.0514−1.8181−0.01640000
116−3.6064−2.6611−0.0589−2.0841−0.01030000
2136.4164−9.18360.2247.92870.48540000.25
2232.2119−6.32280.372113.16840.44860000.3571
2329.8229−1.99430.424715.03110.38760000.4643
2427.30511.72650.445515.76520.32550000.5714
2522.29374.07040.464116.42610.23890000.6786
2629.92812.34450.37513.27110.31940000.7857
2724.67971.85110.451315.97330.280000.8929
2828.5064−0.30510.398914.11710.29460001
2938.4488−15.67480.1675.91040.58340000
21040.0503−15.8040.12474.41350.59020000
21133.9267−10.94290.26749.4630.51440000
21238.1132−13.39280.22597.99430.54920000
21334.3869−10.40260.2579.09530.49140000
21431.4203−8.61360.27989.90360.46460000
21529.7046−7.64150.344812.20340.43010000
216−1.8459−1.4873−0.0338−1.1967−0.01280000
3131.7288−7.88720.2471−8.74570.44130000.25
3234.0629−5.68210.2569.05890.43540000.3571
3329.4633−2.79340.437115.46890.37480000.4643
3430.2582−0.72690.3813.44850.35350000.5714
3529.42531.58960.370613.11410.31260000.6786
3626.35281.21420.447915.85140.31450000.7857
3725.6013.79980.443515.6960.26710000.8929
3828.01920.16890.390513.81960.31920001
3936.7685−14.60280.19336.84180.5850000
31038.5741−13.85520.16625.88230.57670000
31134.4052−10.92050.23568.33940.50190000
31235.2739−11.2060.23178.19870.52740000
31333.0412−8.74610.27589.75940.45920000
31431.7936−7.56550.297710.53450.4230000
31529.6191−5.21980.321411.3740.39070000
3163.39181.87260.0220.777−0.00620000
4130.7111−6.75160.27789.83310.43450000.25
4234.112−8.24620.333211.79250.49780000.3571
4333.5412−4.83050.327811.59920.4430000.4643
4431.9087−3.19670.364512.89990.38590000.5714
4529.1731−1.31360.397614.07050.36720000.6786
4628.9591.89370.436615.45180.31130000.7857
4726.90150.32110.399514.13750.31170000.8929
4826.7599−1.5720.43915.53640.33680001
4936.6065−14.18330.2047.21990.53640000
41037.5816−14.24230.2298.10610.57550000
41135.0624−10.10280.24078.51910.50530000
41233.2279−9.76130.289910.25930.47240000
41334.1838−7.88740.23248.22490.45150000
41429.5376−2.58070.282710.00320.37210000
41530.3227−4.59250.25679.0830.41230000
41622.7864−1.42650.35812.67110.30740.1275000
5130.9515−6.83520.283410.02850.43390000.25
5233.089−7.2420.306910.86090.46080000.3571
5330.0762−2.43910.377313.35440.37840000.4643
5429.2359−1.28120.352412.47160.35980000.5714
5527.9512−0.14460.436315.43920.33480000.6786
5627.60190.7040.443715.70370.3220000.7857
5724.32492.91810.475216.81680.27890000.8929
5826.76862.7510.420114.86810.30140001
5935.0835−10.32530.2237.89060.50580000
51034.9171−11.36670.25619.06380.51140000
51134.7082−11.91140.26779.47270.4980000
51229.6627−6.44270.312211.04870.4060000
51329.2257−5.81880.317611.23840.38540000
51427.8848−3.71790.327911.60360.36860000
51526.1958−2.79360.329811.67220.34330000
516−0.1277−1.924−0.0092−0.32460.00090000
6129.1389−4.30120.306710.85560.38250000.25
6231.6349−4.85330.344612.19660.42180000.3571
6331.0745−1.85260.367613.01080.38750000.4643
6428.3213−0.1150.403914.29580.35010000.5714
6526.33041.07660.465816.48640.30440000.6786
6627.14531.01350.405514.34930.33510000.7857
6726.8358−0.33770.418814.82150.31280000.8929
6825.15681.19660.443315.68850.30050001
6932.6313−9.6080.27179.61470.46980000
61033.6384−8.64170.2699.52140.47280000
61133.7225−9.27340.28149.95840.46850000
61229.6467−5.71420.349912.3840.40070000
61329.097−3.770.317811.24820.37350000
61424.8397−2.04160.358312.67970.32420000
61523.87050.50420.317311.23040.28070000
616−0.6023−2.5656−0.0204−0.7235−0.00180000
7128.7119−3.35920.286410.13610.37710000.25
7229.2265−1.47360.359712.72850.36070000.3571
7327.48440.47230.412714.60730.33150000.4643
7427.041−0.03560.439115.54090.32750000.5714
7527.16361.35480.434515.37760.32290000.6786
7625.76611.93180.459916.27740.29650000.7857
7723.36335.61570.458116.21070.24330000.8929
7826.14961.12710.480517.00330.30890001
7929.9105−4.51450.306510.84840.39980000
71029.2202−4.83740.33511.8540.40130000
71128.1276−3.22950.368313.0350.38760000
71224.74840.52550.395313.98960.31540000
71321.16032.93770.399714.14570.24930000
71420.71862.02920.411714.570.26440000
71520.46043.35390.389113.77130.2270000
716−0.5280.6424−0.0207−0.7309−0.00480000
8124.89090.06050.310710.99730.31230000.25
8226.25461.65810.40314.26320.3220000.3571
8327.10292.5330.410114.51520.31390000.4643
8424.61230.98520.415614.70950.30220000.5714
8526.31092.78110.442615.66410.31220000.6786
8623.05540.88780.44115.60590.29560000.7857
8724.39461.90180.451215.96880.29580000.8929
8822.38534.13350.459916.27470.26180001
8925.981−3.49820.306510.84720.36150000
81024.23130.01410.360312.75190.31390000
81123.6274−1.38340.391113.84180.33090000
81224.37571.29430.36312.84510.29080000
81320.99883.38770.378313.38740.24080000
81420.04034.25590.387213.70370.20540000
81517.3112.6370.380713.47470.20680000
8160.56781.9726−0.0464−1.6434−0.01590000
9130.9062−5.80460.23738.39890.444700.2500
9231.6041−5.58160.299410.59480.449100.37500
9328.9111−3.68020.301910.68380.400200.500
9426.2426−4.15650.355812.59160.38800.62500
9525.9149−2.08350.354312.5380.354300.7500
9623.39012.47990.426615.09730.285100.87500
9723.56440.83150.417214.76320.31150100
9826.6687−1.03060.38413.59090.35790.1275000
9920.98170.73580.411414.55910.26820000
91020.20464.37350.369813.08570.21730000
91120.01054.0130.4114.50990.22170000
91219.44935.59740.410414.52250.19070000
91316.92135.50290.463416.40050.19180000
91416.15977.42640.413314.62590.15990000
91515.38876.98170.432915.32090.15080000
9161.481.67330.0421.48710.00690000
10130.6968−10.25410.284710.07740.47600.2500
10232.1255−11.07420.295910.47030.51400.37500
10332.1474−9.16540.300510.63630.462200.500
10430.6915−6.07810.318711.27850.430600.62500
10527.9014−2.52070.372813.1950.363800.7500
10626.78930.10410.379113.41750.321200.87500
10725.6916−1.64110.400114.15930.31680100
10840.7148−14.93270.19566.92080.6111000.250
10937.6203−11.57390.27729.81170.5535000.35710
101036.0618−9.65520.27729.80980.5182000.46430
101133.6683−7.90740.335211.86120.4994000.57140
101230.8619−2.99420.38313.55480.4254000.67860
101327.3645−0.18240.457616.19510.3507000.78570
101425.91530.86960.433515.34220.3058000.89290
101524.88322.36220.38113.48350.28840010
101622.1513−0.110.361812.80280.30280.1275000
11129.6722−10.17130.29610.47450.475100.2500
11231.7003−8.83680.297110.51370.469400.37500
11329.2951−7.3290.31811.25360.439300.500
11428.0821−5.92980.361812.80320.401900.62500
11524.5742−1.38210.388313.74090.311600.7500
11624.41042.66570.393113.91210.267900.87500
11723.73640.51670.41414.65050.28560100
11838.1522−11.4360.27989.90260.5515000.250
11935.6744−12.12630.331911.74650.5375000.35710
111033.8417−8.21010.335211.86370.4848000.46430
111132.3206−5.85360.371813.15650.4522000.57140
111229.8353−3.46420.436715.45520.379000.67860
111324.31290.22440.459916.27590.3141000.78570
111423.91170.80210.443115.68010.2893000.89290
111522.59092.04240.443715.70320.27390010
1116−0.12160.5666−0.0089−0.31610.0010000
12129.8448−9.82770.307110.86850.46100.2500
12231.3438−8.30430.318211.26090.459800.37500
12330.9513−7.3880.325611.52180.45600.500
12426.2462−2.65720.414214.6580.361800.62500
12522.8920.86390.433915.35740.288900.7500
12621.62193.86970.445215.75710.240900.87500
12719.91894.93130.463916.41690.21650100
12834.5283−10.72440.335411.87150.5122000.250
12933.9857−8.20470.34312.13840.4815000.35710
121031.621−4.31180.354612.54890.4314000.46430
121129.2723−5.16350.431315.26360.4023000.57140
121227.2007−1.00880.418914.82370.3493000.67860
121323.13620.6340.464716.44470.2984000.78570
121423.25742.12680.428615.16890.2725000.89290
121521.24691.84880.444315.72350.26560010
1216−1.1045−0.8366−0.0103−0.36620.00140000
13125.7035−7.12290.329511.66230.392300.2500
13227.9296−4.92930.351612.44150.385100.37500
13326.5836−2.69030.338711.98590.370300.500
13425.0695−2.35130.380313.45790.339800.62500
13524.2518−2.80240.395213.98660.324300.7500
13619.07862.90810.438915.53140.224600.87500
13718.23246.92460.482717.08430.19180100
13830.5494−2.93910.399714.14580.4164000.250
13930.9918−5.33140.367413.00070.4358000.35710
131026.763−0.25780.407714.42750.3345000.46430
131123.83810.20530.462816.37790.3142000.57140
131224.45591.10550.451815.98890.3077000.67860
131322.62913.71320.459416.25870.2702000.78570
131422.0582.87560.464316.43270.2575000.89290
131521.63254.21590.468716.58610.24980010
1316−1.64450.07920.00820.29130.00110000
14123.1422−2.35580.357512.65360.33400.2500
14223.5238−0.9010.398814.11230.323600.37500
14322.08370.87480.40614.36860.288700.500
14422.87592.55740.383413.56960.275400.62500
14519.12874.71840.43315.32260.234100.7500
14616.15166.23730.461416.33050.178300.87500
14715.7678.77220.491517.39580.14560100
14826.16290.36170.42815.14750.3377000.250
14927.6928−0.33160.389513.78340.3418000.35710
141023.63232.01360.419914.85890.2944000.46430
141122.92383.49490.431815.28110.2599000.57140
141220.09743.92450.461516.3310.2382000.67860
141320.85674.19290.453216.03990.2401000.78570
141420.50923.82090.454216.07260.246000.89290
141519.57833.96690.422614.95740.23470010
1416−1.26630.22870.00490.17440.00280000
15119.71751.50280.436215.43850.25100.2500
15218.01133.38980.370513.11080.220100.37500
15315.98843.61970.37513.27110.202400.500
15414.83846.17550.378413.39150.171800.62500
15517.9684.61710.372313.17690.203100.7500
15612.63928.18230.439115.540.127800.87500
15712.90810.310.42114.8990.11780100
15822.49083.75630.445115.75140.2796000.250
15920.50654.71120.426515.09380.2479000.35710
151020.4725.27490.446115.78590.2487000.46430
151119.21315.24230.455316.11410.2276000.57140
151219.3155.60340.437815.49480.222000.67860
151319.29155.46310.406814.39510.2215000.78570
151419.51254.98080.419314.83970.2264000.89290
151519.56875.61040.423414.98560.22860010
15161.57442.08660.06122.16640.00590000
16115.31158.30710.477216.88960.138900.2500
1625.26194.70620.20887.39120.061100.37500
1634.80094.10180.19456.88350.042200.500
1643.68683.14710.18686.61030.042600.62500
1656.46716.21390.27769.82270.048200.7500
16610.01538.38730.388913.76220.094600.87500
1679.15847.61450.40514.33260.08670100
16820.38193.64360.39714.0510.2505000.250
16920.49772.93820.395113.98120.2412000.35710
161017.64432.47090.393713.93310.2379000.46430
161117.69312.94840.397614.07090.2315000.57140
161214.46591.3530.320611.34520.2104000.67860
161314.23031.27460.26389.33760.1943000.78570
161414.90271.46980.327311.58320.2194000.89290
161512.55331.4870.23758.4060.19270010
161620.31252.9730.428815.17460.24630.1275000
Tem-
pera-
ture:
350molmolmol
C.%%%
RPtNH32NO22RuNONO33ZrONO32SUM_micromolsFeLaTimol % Ptmol % Rumol % Zr
realrealrealreal
10000.127500010000
10000000000
10000000000
10000000000
10000000000
10000000000
10000.127500010000
10000000000
10000000000
10000000000
10000000000
10000000000
10000.127500010000
10000000000
10000000000
10000000000
20.12750.098900.47640052.4826.7620.760
20.12750.098900.58350061.221.8516.950
20.12750.098900.69070067.2218.4614.320
20.12750.098900.79780071.6215.9812.40
20.12750.098900.9050074.9814.0910.930
20.12750.098901.01210077.6312.69.770
20.12750.098901.11930079.7711.398.840
20.12750.098901.22640081.5410.48.060
20.12750.09890.250.476400026.7620.7652.48
20.12750.09890.3750.601400021.216.4462.35
20.12750.09890.50.726400017.5513.6268.83
20.12750.09890.6250.851400014.9811.6273.41
20.12750.09890.750.976400013.0610.1376.81
20.12750.09890.8751.101400011.588.9879.44
20.12750.098911.226400010.48.0681.54
20000000000
30.12750.086500.4640053.8727.4818.650
30.12750.086500.57120062.5322.3215.150
30.12750.086500.67830068.4518.812.760
30.12750.086500.78550072.7516.2311.020
30.12750.086500.89260076.0214.289.690
30.12750.086500.99980078.5912.758.660
30.12750.086501.10690080.6611.527.820
30.12750.086501.2140082.3710.57.130
30.12750.08830.250.465800027.3718.9653.67
30.12750.08830.3750.590800021.5814.9563.47
30.12750.08830.50.715800017.8112.3469.85
30.12750.08830.6250.840800015.1610.574.33
30.12750.08830.750.965800013.29.1477.66
30.12750.08830.8751.090800011.698.180.22
30.12750.088311.215800010.497.2682.25
30000000000
40.12750.074200.45170055.3528.2316.420
40.12750.074200.55880063.9122.8213.270
40.12750.074200.6660069.7219.1511.140
40.12750.074200.77310073.9116.499.590
40.12750.074200.88020077.0914.488.430
40.12750.074200.98740079.5712.917.510
40.12750.074201.09450081.5711.656.780
40.12750.074201.20170083.2210.616.170
40.12750.07770.250.455200028.0117.0754.92
40.12750.07770.3750.580200021.9713.3964.63
40.12750.07770.50.705200018.0811.0270.9
40.12750.07770.6250.830200015.369.3675.28
40.12750.07770.750.955200013.358.1478.52
40.12750.07770.8751.080200011.87.1981
40.12750.077711.205200010.586.4582.97
40000.127500010000
50.12750.061800.43930056.9129.0214.070
50.12750.061800.54650065.3623.3311.310
50.12750.061800.65360071.0419.519.460
50.12750.061800.76070075.1116.768.130
50.12750.061800.86790078.1914.697.120
50.12750.061800.9750080.5813.086.340
50.12750.061801.08220082.5111.785.710
50.12750.061801.18930084.0810.725.20
50.12750.06710.250.444600028.6815.0956.23
50.12750.06710.3750.569600022.3811.7865.83
50.12750.06710.50.694600018.369.6671.98
50.12750.06710.6250.819600015.568.1976.26
50.12750.06710.750.944600013.57.179.4
50.12750.06710.8751.069600011.926.2781.81
50.12750.067111.194600010.675.6283.71
50000000000
60.12750.049500.4270058.5529.8629816111.582152480
60.12750.049500.53410066.8723.879.260
60.12750.049500.64120072.419.887.710
60.12750.049500.74840076.3617.046.610
60.12750.049500.85550079.3214.95.780
60.12750.049500.96270081.6213.245.140
60.12750.049501.06980083.4611.924.620
60.12750.049501.1770084.9710.834.20
60.12750.05650.250.43400029.3813.0257.6
60.12750.05650.3750.55900022.8110.1167.08
60.12750.05650.50.68400018.648.2673.1
60.12750.05650.6250.80900015.766.9977.25
60.12750.05650.750.93400013.656.0580.3
60.12750.05650.8751.05900012.045.3482.62
60.12750.056511.18400010.774.7784.46
60000000000
70.12750.037100.41460060.330.758.950
70.12750.037100.52170068.4524.447.110
70.12750.037100.62890073.8320.275.90
70.12750.037100.7360077.6417.325.040
70.12750.037100.84320080.4815.124.40
70.12750.037100.95030082.6813.423.90
70.12750.037101.05740084.4412.063.510
70.12750.037101.16460085.8710.953.180
70.12750.04590.250.423400030.1110.8459.04
70.12750.04590.3750.548400023.258.3768.38
70.12750.04590.50.673400018.936.8274.25
70.12750.04590.6250.798400015.975.7578.28
70.12750.04590.750.923400013.814.9781.22
70.12750.04590.8751.048400012.164.3883.46
70.12750.045911.173400010.873.9185.22
70000000000
80.12750.024700.40220062.1531.76.150
80.12750.024700.50940070.1125.034.850
80.12750.024700.61650075.3120.684.010
80.12750.024700.72370078.9617.623.420
80.12750.024700.83080081.6815.352.980
80.12750.024700.93790083.7713.592.640
80.12750.024701.04510085.4312.22.370
80.12750.024701.15220086.7911.072.150
80.12750.03530.250.412800030.898.5660.56
80.12750.03530.3750.537800023.716.5769.73
80.12750.03530.50.662800019.245.3375.44
80.12750.03530.6250.787800016.184.4879.33
80.12750.03530.750.912800013.973.8782.16
80.12750.03530.8751.037800012.293.484.31
80.12750.035311.162800010.963.0486
80000000000
90.12750.098900.476452.480026.7620.760
90.12750.098900.601462.350021.216.440
90.12750.098900.726468.830017.5513.620
90.12750.098900.851473.410014.9811.620
90.12750.098900.976476.810013.0610.130
90.12750.098901.101479.440011.588.980
90.12750.098901.226481.540010.48.060
90000.127500010000
90.12750.02470.250.402200031.76.1562.15
90.12750.02470.3750.527200024.184.6971.13
90.12750.02470.50.652200019.553.7976.66
90.12750.02470.6250.777200016.43.1880.41
90.12750.02470.750.902200014.132.7483.13
90.12750.02470.8751.027200012.412.4185.18
90.12750.024711.152200011.072.1586.79
90000000000
100.12750.088300.465853.670027.3718.960
100.12750.088300.590863.470021.5814.950
100.12750.088300.715869.850017.8112.340
100.12750.088300.840874.330015.1610.50
100.12750.088300.965877.660013.29.140
100.12750.088301.090880.220011.698.10
100.12750.088301.215882.250010.497.260
100.12750.098900.4764052.48026.7620.760
100.12750.098900.5835061.2021.8516.950
100.12750.098900.6907067.22018.4614.320
100.12750.098900.7978071.62015.9812.40
100.12750.098900.905074.98014.0910.930
100.12750.098901.0121077.63012.69.770
100.12750.098901.1193079.77011.398.840
100.12750.098901.2264081.54010.48.060
100000.127500010000
110.12750.077700.455254.920028.0117.070
110.12750.077700.580264.630021.9713.390
110.12750.077700.705270.90018.0811.020
110.12750.077700.830275.280015.369.360
110.12750.077700.955278.520013.358.140
110.12750.077701.0802810011.87.190
110.12750.077701.205282.970010.586.450
110.12750.086500.464053.87027.4818.650
110.12750.086500.5712062.53022.3215.150
110.12750.086500.6783068.45018.812.760
110.12750.086500.7855072.75016.2311.020
110.12750.086500.8926076.02014.289.690
110.12750.086500.9998078.59012.758.660
110.12750.086501.1069080.66011.527.820
110.12750.086501.214082.37010.57.130
110000000000
120.12750.067100.444656.230028.6815.090
120.12750.067100.569665.830022.3811.780
120.12750.067100.694671.980018.369.660
120.12750.067100.819676.260015.568.190
120.12750.067100.944679.40013.57.10
120.12750.067101.069681.810011.926.270
120.12750.067101.194683.710010.675.620
120.12750.074200.4517055.35028.2316.420
120.12750.074200.5588063.91022.8213.270
120.12750.074200.666069.72019.1511.140
120.12750.074200.7731073.91016.499.590
120.12750.074200.8802077.09014.488.430
120.12750.074200.9874079.57012.917.510
120.12750.074201.0945081.57011.656.780
120.12750.074201.2017083.22010.616.170
120000000000
130.12750.056500.43457.60029.3769131813.021296260
130.12750.056500.55967.080022.8080038710.10963180
130.12750.056500.68473.10018.639961568.2621499520
130.12750.056500.80977.250015.759919476.9855733050
130.12750.056500.93480.30013.65075486.0506875370
130.12750.056501.05982.620012.039497645.3364989260
130.12750.056501.18484.460010.768451154.7731084560
130.12750.061800.4393056.91029.0226205714.070280270
130.12750.061800.5465065.36023.3321890511.311536750
130.12750.061800.6536071.04019.507397669.4572628870
130.12750.061800.7607075.11016.759972618.1253004470
130.12750.061800.8679078.19014.690905097.1222083970
130.12750.061800.975080.58013.076564046.3395695280
130.12750.061801.0822082.51011.781886735.7119048890
130.12750.061801.1893084.08010.720479275.197330390
130000000000
140.12750.045900.423459.040030.1110.840
140.12750.045900.548468.380023.258.370
140.12750.045900.673474.250018.936.820
140.12750.045900.798478.280015.975.750
140.12750.045900.923481.220013.814.970
140.12750.045901.048483.460012.164.380
140.12750.045901.173485.220010.873.910
140.12750.049500.427058.55029.8611.580
140.12750.049500.5341066.87023.879.260
140.12750.049500.6412072.4019.887.710
140.12750.049500.7484076.36017.046.610
140.12750.049500.8555079.32014.95.780
140.12750.049500.9627081.62013.245.140
140.12750.049501.0698083.46011.924.620
140.12750.049501.177084.97010.834.20
140000000000
150.12750.035300.412860.560030.898.560
150.12750.035300.537869.730023.716.570
150.12750.035300.662875.440019.245.330
150.12750.035300.787879.330016.184.480
150.12750.035300.912882.160013.973.870
150.12750.035301.037884.310012.293.40
150.12750.035301.1628860010.963.040
150.12750.037100.4146060.3030.758.950
150.12750.037100.5217068.45024.447.110
150.12750.037100.6289073.83020.275.90
150.12750.037100.736077.64017.325.040
150.12750.037100.8432080.48015.124.40
150.12750.037100.9503082.68013.423.90
150.12750.037101.0574084.44012.063.510
150.12750.037101.1646085.87010.953.180
150000000000
160.12750.024700.402262.150031.76.150
160.12750.024700.527271.130024.184.690
160.12750.024700.652276.660019.553.790
160.12750.024700.777280.410016.43.180
160.12750.024700.902283.130014.132.740
160.12750.024701.027285.180012.412.410
160.12750.024701.152286.790011.072.150
160.12750.024700.4022062.15031.76.150
160.12750.024700.5094070.11025.034.850
160.12750.024700.6165075.31020.684.010
160.12750.024700.7237078.96017.623.420
160.12750.024700.8308081.68015.352.980
160.12750.024700.9379083.77013.592.640
160.12750.024701.0451085.43012.22.370
160.12750.024701.1522086.79011.072.150
160000.127500010000
TABLE V — Temperature:
250 C.Pt1.0%/
RCCOCONVH2OCONVCO2PRODCO2PERPRODCH4PRODZrO2_stdCeNO33NH42CeNO36CoNO32
realrealrealrealrealrealrealrealrealrealreal
1129.840221.19771.083939.78970.16930.1275000
12−0.8066−0.34680.01990.73180.0150000
13−1.342−0.8883−0.0103−0.37880.00690000
14−0.4471−0.8737−0.0209−0.76790.00450000
150.2051−0.70780.02010.73860.00860000
16−0.2701−1.1286−0.0074−0.2730.00080000
1728.429617.03960.942234.58580.13030.1275000
180.3481−0.0616−0.0199−0.7298−0.00250000
19−0.1214−1.3018−0.0217−0.79510.0010000
1101.2904−0.1752−0.0251−0.9203−0.00450000
111−0.1983−0.4964−0.0223−0.81920.00050000
112−0.0741−1.2392−0.019−0.69890.00040000
11327.999915.93520.952634.96870.1280.1275000
1140.6232−0.30230.01120.41220.00030000
115−0.10180.0336−0.0235−0.8632−0.00470000
11627.235116.58030.88832.59660.11850.1275000
2125.642917.96950.831330.51520.09860000.125
2229.410418.68340.957635.15190.1186000.50.125
2322.33928.97230.623922.90190.13780000.125
240.83950.27080.00140.0528−0.00130000.125
2522.452513.43850.67224.66990.10330000.125
2630.649518.96141.02837.73870.1360000.125
2722.899214.68550.705425.89490.09940000.125
2816.470511.30250.495718.1970.06430000.125
2925.289817.11910.841830.9030.10180000.125
21027.765117.8550.930734.16450.113400.500.125
21115.235310.15250.506218.58250.06250000.125
2126.65163.77680.20277.44140.02310000.125
2135.66624.38650.15365.63770.01830000.125
21420.544312.5490.683825.10230.08680000.125
2152.21640.12120.05732.10490.00610000.125
2160.3931.3011−0.0224−0.821−0.00620000
3122.245415.37540.710526.08260.08160000.2188
3228.008319.55470.88532.48780.1083000.40630.2188
3323.689514.28960.678724.91360.12460000.2188
340.96932.2659−0.0302−1.1081−0.01460000.2188
3528.274216.44760.888132.60160.13150000.2188
3640.456721.97041.222544.87590.20550000.2188
3725.234617.72750.807929.65850.10510000.2188
3823.750816.09990.73627.01830.10410000.2188
3926.318419.49090.864231.72330.0980000.2188
31026.306617.55530.871231.98170.100900.406300.2188
31116.506912.02980.52519.27280.05770000.2188
31215.750111.82250.493618.12050.05210000.2188
3136.28555.37870.17286.34320.010000.2188
31418.421514.24450.61922.72350.06720000.2188
3151.60973.57490.02330.8544−0.00890000.2188
3161.35090.73630.00050.0168−0.00770000
4123.174416.98660.778428.57570.09040000.3125
4228.532320.26850.916133.62760.112000.31250.3125
4324.902316.58520.768728.21990.11840000.3125
448.34847.41390.24629.03650.02360000.3125
4528.231416.6520.81429.88240.15330000.3125
4639.479824.091.171943.02110.20260000.3125
4725.065717.14290.797629.27760.1050000.3125
4820.868414.42440.648423.80220.08870000.3125
4926.47618.42140.878432.24490.10050000.3125
41025.380418.10390.852231.28290.097500.312500.3125
41113.91819.22740.458816.84120.04980000.3125
41213.698710.46190.43415.93190.04590000.3125
4138.0697.55890.23278.54310.01850000.3125
41421.704815.50360.723726.56510.07940000.3125
4157.13837.6110.22048.09140.01680000.3125
41628.227418.59720.938334.44430.11820.1275000
5125.035617.87390.818230.03510.09960000.4063
5229.521121.58320.928434.08070.1135000.21880.4063
5325.588917.36110.795729.2110.11490000.4063
5411.11879.98220.338912.44170.03380000.4063
5527.945716.7130.831730.52930.14910000.4063
5638.117221.26741.104340.5390.20470000.4063
5724.684717.54150.800429.38280.0980000.4063
5824.836917.04560.791629.05710.10390000.4063
5925.268419.12680.827130.36240.09420000.4063
51025.994919.50890.858531.51490.099100.218800.4063
51117.655913.85670.577521.19970.06350000.4063
51219.5614.3660.613122.50580.07050000.4063
5137.8076.72210.21818.0050.0210000.4063
51422.202614.9670.74827.45710.08980000.4063
51511.41618.84940.358813.1730.03730000.4063
5160.03430.2746−0.0017−0.0622−0.0070000
6128.363519.42660.919733.76230.12220000.5
6230.466320.84580.986536.21510.1288000.1250.5
6324.512316.11730.79429.14550.10750000.5
6420.276714.69180.673324.71610.08010000.5
6533.249616.760.935134.32740.22170000.5
6638.505819.29411.093840.1540.23270000.5
6724.133617.41120.799429.34550.10520000.5
6822.652814.93650.765328.09450.09740000.5
6926.914419.68020.884532.47020.10550000.5
61026.603818.74140.920833.80010.1100.12500.5
61122.434914.92580.781728.69590.09440000.5
61220.911214.21220.692225.40990.08170000.5
61311.9047.58260.401414.73380.04860000.5
61423.525216.73110.770728.29150.09170000.5
61517.210310.8330.573521.05130.0670000.5
6161.0088−0.18050.01770.6503−0.00410000
7129.109118.38880.937734.42380.12880000
7223.467515.99290.799329.34270.10330000.5
7324.417.98060.805229.55830.0931000.50
7423.925917.62840.820630.12510.09280000
7521.937415.26570.749527.51240.09150000
7634.688823.35281.13141.51820.15440000
7723.034116.94950.700925.72760.0990000
7828.715315.64330.801529.42210.16710000
7921.888615.61420.763228.01520.08980000
71021.910715.61830.774528.43250.090700.500
71118.590714.2060.61522.57680.07140000
71224.801317.95530.839130.80110.10490000
7134.1484.59630.15585.71930.010000
71425.170716.99650.868331.8750.10330000
71510.0537.98520.363813.35490.03830000
71627.333818.61290.931434.19250.11540.1275000
8127.870916.83740.903933.17990.14190000
8225.023916.35570.860531.58850.11860000.4063
8323.312416.54450.780328.64420.1016000.40630
8430.416720.7551.012137.15180.12780000
8522.472915.59520.755627.73640.09870000
8633.885922.77361.124641.28290.15340000
8723.098215.0070.7226.43150.10980000
8827.982213.77860.81129.77290.17780000
8923.730517.11750.821330.14770.10590000
81024.143516.0570.805829.58030.102900.406300
81122.784515.93410.766228.1260.10510000
81222.547214.82090.776228.49290.10380000
8134.65.02830.16115.91390.01640000
81426.311717.55680.893732.80570.11580000
81519.293513.64830.700825.7250.08270000
8160.35012.38070.00440.1601−0.00720000
9130.266917.40310.938234.4390.16380000
9224.783115.51680.813329.8560.11930000.3125
9324.884316.37990.814429.89520.1144000.31250
9427.715818.30430.948634.82220.12090000
9522.30114.70310.767828.18620.10770000
9631.752921.81861.051138.58340.14070000
9722.422313.25090.691425.37940.11250000
9826.727210.8230.796629.24110.17180000
9918.635811.99720.642323.57760.08930000
91021.573213.08570.729526.77850.099800.312500
91121.860313.75620.738327.10310.10870000
91223.258414.23390.777928.55460.10920000
9136.10895.88130.21457.87370.02260000
91421.79614.02380.751827.59660.10120000
91514.775810.76050.52419.23410.06080000
9160.00470.36210.03451.2680.00060000
10132.295712.9690.878632.2530.22590000
10222.907313.59060.744427.32680.12290000.2188
10324.0214.46550.765828.11010.1285000.21880
10427.473518.23790.928734.09010.12470000
10525.788814.32220.790829.03010.15080000
10628.268118.49840.95935.20410.14030000
10726.333513.77460.769828.2570.15870000
10827.279311.61590.771528.32220.1810000
10923.753213.99920.764728.07270.11870000
101023.010412.86120.750127.53680.124200.218800
101124.395813.85160.782128.70850.12830000
101224.717814.42980.794529.16480.12510000
10136.21035.47570.23298.55080.02760000
101420.325913.05730.693225.44670.09870000
101518.174312.80710.668524.53920.08180000
101625.14816.33110.910533.42260.11590.1275000
11133.265713.78690.909633.3890.22360000
11226.362912.9960.812329.8190.16180000.125
11324.966113.93430.801529.42230.135000.1250
11425.74914.22060.856231.42860.14020000
11523.362211.05140.72626.65040.14080000
11625.400215.31520.862231.6520.12970000
11723.752711.04050.708125.99450.14740000
11825.271310.45180.760627.91930.16630000
11922.100412.20490.705525.89810.11770000
111021.897512.22730.714826.24060.118400.12500
111122.212312.45590.720826.45870.12350000
111222.427213.36550.737527.07160.11410000
111310.68197.06260.356713.0950.05250000
111422.452812.93620.756827.78010.12060000
111519.744813.93330.695125.51750.08750000
1116−0.19721.4710.02370.87170.00020000
12131.565621.67971.078239.57880.13970000
12219.604313.5720.695525.53220.0890000.5
12328.166617.36470.924433.93340.14880000
12431.325321.79611.059438.890.1349000.50
12517.383414.05710.623822.89950.07490000
12635.305724.55211.187843.60460.15660000
12723.143116.66390.801529.42110.10660000
12826.606517.79810.931834.20450.13380000
12931.07322.43461.069739.2690.13540000
121029.932822.29391.051438.59620.127300.500
121128.573620.90071.012537.16930.12360000
121228.819519.46761.039938.17290.12740000
12132.92183.35760.09853.61550.00970000
121425.701317.96710.902333.12110.11470000
12158.4925.91260.330812.14330.04230000
1216−0.10150.16180.01650.60660.00230000
13132.92923.16621.139841.84010.14510000
13212.918810.58820.44916.4810.05470000.4063
13328.085618.70430.940134.51030.1260000
13431.713122.90091.05438.69190.1335000.40630
13510.38728.66290.392414.4050.04540000
13632.646922.02661.097640.29040.14220000
13726.797919.12160.931334.18680.11680000
13827.120519.48290.954935.05170.12230000
13929.593121.52311.03838.10410.12640000
131028.86820.78431.016337.30680.125400.406300
131119.845515.10610.690625.3530.08650000
131228.819120.63371.013437.19940.12380000
13132.60243.29720.09613.5260.00710000
131425.050116.21040.912633.50220.11590000
13156.42465.13370.283510.40710.03490000
131624.604316.3410.900533.05560.11420.1275000
14131.190522.58521.076139.50450.13790000
14215.368612.56270.553420.31380.06720000.3125
14328.590221.0790.957335.14150.12520000
14430.822521.69961.064839.08810.1372000.31250
14510.16199.30910.384314.10780.04460000
14625.903719.35470.937834.4250.11510000
14728.961521.10860.996636.58470.1290000
14825.326819.62530.909633.3920.11170000
14930.536822.80981.051738.60720.13170000
141030.463921.86041.046838.42790.131900.312500
141128.536820.58261.015237.26670.12620000
141228.987820.0311.028337.7480.12770000
14131.94053.49970.10213.74930.00830000
141426.269818.12590.940734.53260.11720000
14153.52223.44560.17286.3450.01930000
1416−1.27210.28760.01520.557400000
15121.928516.55330.794429.16160.09810000
1528.55567.93220.317611.65810.03860000.2188
15328.913919.38731.011537.13050.13290000
15429.494720.56751.012937.18160.1319000.21880
15510.31997.81830.375813.79390.04880000
15619.0712.97190.682225.04240.08720000
15724.459216.54380.878732.25770.11220000
15826.196619.03640.928334.07530.11490000
15928.80520.3991.000736.73530.12310000
151027.867119.92790.988336.27970.123700.218800
151125.907718.13930.923833.91330.11740000
151226.816819.51310.936434.37390.11980000
15133.18314.17190.12554.60870.01350000
151425.648517.98310.907333.30610.11420000
15153.40192.85010.18626.83340.02520000
1516−0.67640.69350.03041.11610.00280000
16127.235817.97970.994836.51990.13240000
16220.423513.94080.754427.6930.09970000.125
16322.114816.79940.791929.06930.1010000
16427.845718.16570.970635.62850.1316000.1250
16516.051510.92710.603222.14430.07660000
16621.531916.44120.804829.54170.1010000
16728.653819.22131.014537.2430.13460000
16827.058220.07770.948134.80380.12180000
16928.25119.23681.009737.06620.1320000
161028.314419.65970.990736.36610.128200.12500
161125.237217.92270.903733.17480.11460000
161227.111319.97980.98436.12020.12210000
16137.02226.860.288810.60090.03590000
161424.311316.59730.903233.15670.11560000
161511.01177.80260.440816.18250.05530000
161624.974415.31360.904733.20920.11820.1275000
Temperature:
250 C.
RCoOAc2Na3CoNO36CuNO32GeOX2H2MoO4KRuO4RuNONO33RuNOOAc3LaNO33NH4ReO4
realrealrealrealrealrealrealrealrealrealreal
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20000000.0989000
200000.500000
20.5000000000
200.500000000
2000000.0980000
200000000.09800
2000000000.50
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20000000000
2000.50000000
20000000000.1074
20000.2000000
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30000000.0804000
300000.406300000
30.4063000000000
300.406300000000
3000000.07960000
300000000.079600
3000000000.40630
30000000000
30000000000
30000000000
3000.40630000000
30000000000.0873
30000.1625000000
30000000000
40000000000
40000000000
40000000.0618000
400000.312500000
40.3125000000000
400.312500000000
4000000.06130000
400000000.061300
4000000000.31250
40000000000
40000000000
40000000000
4000.31250000000
40000000000.0671
40000.125000000
40000000000
50000000000
50000000000
50000000.0433000
500000.218800000
50.2188000000000
500.218800000000
5000000.04290000
500000000.042900
5000000000.21880
50000000000
50000000000
50000000000
5000.21880000000
50000000000.047
50000.0875000000
50000000000
60000000000
60000000000
60000000.0247000
600000.12500000
60.125000000000
600.12500000000
6000000.02450000
600000000.024500
6000000000.1250
60000000000
60000000000
60000000000
6000.1250000000
60000000000.0269
60000.05000000
60000000000
70000000.0247000
70000000.0247000
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700000.500.0247000
70.5000000.0247000
700.500000.0247000
7000000.0980.0247000
70000000.02470.09800
70000000.024700.50
70000000.0247000
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7000.50000.0247000
70000000.0247000.1074
70000.2000.0247000
70000000000
80000000.0433000
80000000.0433000
80000000.0433000
800000.406300.0433000
80.4063000000.0433000
800.406300000.0433000
8000000.07960.0433000
80000000.04330.079600
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80000000.0433000
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8000.40630000.0433000
80000000.0433000.0873
80000.1625000.0433000
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900000.312500.0618000
90.3125000000.0618000
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90000000.06180.061300
90000000.061800.31250
90000000.0618000
90000000.0618000
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9000.31250000.0618000
90000000.0618000.0671
90000.125000.0618000
90000000000
100000000.0804000
100000000.0804000
100000000.0804000
1000000.218800.0804000
100.2188000000.0804000
1000.218800000.0804000
10000000.04290.0804000
100000000.08040.042900
100000000.080400.21880
100000000.0804000
100000000.0804000
100000000.0804000
10000.21880000.0804000
100000000.0804000.047
100000.0875000.0804000
100000000000
110000000.0989000
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1100000.12500.0989000
110.125000000.0989000
1100.12500000.0989000
11000000.02450.0989000
110000000.09890.024500
110000000.098900.1250
110000000.0989000
110000000.0989000
110000000.0989000
11000.1250000.0989000
110000000.0989000.0269
110000.05000.0989000
110000000000
1200000.12500000
1200000.12500000
1200000.12500.0989000
1200000.12500000
120.50000.12500000
1200.5000.12500000
1200000.1250.0980000
1200000.125000.09800
1200000.1250000.50
1200000.12500000
1200000.12500000
1200000.12500000
12000.500.12500000
1200000.12500000.1074
120000.20.12500000
120000000000
1300000.218800000
1300000.218800000
1300000.218800.0804000
1300000.218800000
130.40630000.218800000
1300.4063000.218800000
1300000.21880.07960000
1300000.2188000.079600
1300000.21880000.40630
1300000.218800000
1300000.218800000
1300000.218800000
13000.406300.218800000
1300000.218800000.0873
130000.16250.218800000
130000000000
1400000.312500000
1400000.312500000
1400000.312500.0618000
1400000.312500000
140.31250000.312500000
1400.3125000.312500000
1400000.31250.06130000
1400000.3125000.061300
1400000.31250000.31250
1400000.312500000
1400000.312500000
1400000.312500000
14000.312500.312500000
1400000.312500000.0671
140000.1250.312500000
140000000000
1500000.406300000
1500000.406300000
1500000.406300.0433000
1500000.406300000
150.21880000.406300000
1500.2188000.406300000
1500000.40630.04290000
1500000.4063000.042900
1500000.40630000.21880
1500000.406300000
1500000.406300000
1500000.406300000
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1500000.406300000.047
150000.08750.406300000
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1600000.500000
1600000.500000
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160.1250000.500000
1600.125000.500000
1600000.50.02450000
1600000.5000.024500
1600000.50000.1250
1600000.500000
1600000.500000
1600000.500000
16000.12500.500000
1600000.500000.0269
160000.050.500000
160000000000
Temperature:
250 C.molmolmolmolmolmolmolmol
RPtNH32NO22ZrONO32ZrOOAc2mol %%mol %%%%%%%%
realrealrealrealSUM_micromolsCeCoCuGeMoRuLaRePtZr
10000.1275000000001000
100000000000000
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100000000000000
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10000.1275000000001000
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10000.1275000000001000
20.1275000.2525049.500000050.50
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20.1275000.3514035.5700028.140036.280
20.1275000.7525016.610066.4500016.940
20.1275000.7525083.0600000016.940
20.1275000.7525083.0600000016.940
20.1275000.3505035.6600027.960036.380
20.1275000.3505035.6600027.960036.380
20.1275000.7525016.61000066.45016.940
20.1275000.752566.4516.6100000016.940
20.12750.500.7525016.6100000016.9466.45
20.127500.50.7525016.6100000016.9466.45
20.1275000.7525016.6166.450000016.940
20.1275000.3599034.730000029.8435.430
20.1275000.4525027.62044.2000028.180
200000000000000
30.1275000.3463063.1800000036.820
30.1275000.752553.9929.0700000016.940
30.1275000.4266051.2800018.840029.890
30.1275000.7525029.070053.9900016.940
30.1275000.7525083.0600000016.940
30.1275000.7525083.0600000016.940
30.1275000.4259051.3600018.70029.940
30.1275000.4259051.3600018.70029.940
30.1275000.7525029.07000053.99016.940
30.1275000.752553.9929.0700000016.940
30.12750.406300.7525029.0700000016.9453.99
30.127500.40630.7525029.0700000016.9453.99
30.1275000.7525029.0753.990000016.940
30.1275000.4335050.460000020.1329.410
30.1275000.5088043031.94000025.060
300000000000000
40.1275000.44071.0200000028.980
40.1275000.752541.5341.5300000016.940
40.1275000.5018062.2700012.320025.410
40.1275000.7525041.530041.5300016.940
40.1275000.7525083.0600000016.940
40.1275000.7525083.0600000016.940
40.1275000.5013062.3400012.220025.440
40.1275000.5013062.3400012.220025.440
40.1275000.7525041.53000041.53016.940
40.1275000.752541.5341.5300000016.940
40.12750.312500.7525041.5300000016.9441.53
40.127500.31250.7525041.5300000016.9441.53
40.1275000.7525041.5341.530000016.940
40.1275000.5071061.620000013.2425.140
40.1275000.565055.31022.12000022.570
40000.1275000000001000
50.1275000.5338076.1100000023.890
50.1275000.752529.0753.9900000016.940
50.1275000.577070.40007.50022.10
50.1275000.7525053.990029.0700016.940
50.1275000.7525083.0600000016.940
50.1275000.7525083.0600000016.940
50.1275000.5766070.450007.440022.110
50.1275000.5766070.450007.440022.110
50.1275000.7525053.99000029.07016.940
50.1275000.752529.0753.9900000016.940
50.12750.218800.7525053.9900000016.9429.07
50.127500.21880.7525053.9900000016.9429.07
50.1275000.7525053.9929.070000016.940
50.1275000.5807069.95000008.0921.950
50.1275000.6213065.39014.08000020.520
500000000000000
60.1275000.6275079.6800000020.320
60.1275000.752516.6166.4500000016.940
60.1275000.6522076.660003.790019.550
60.1275000.7525066.450016.6100016.940
60.1275000.7525083.0600000016.940
60.1275000.7525083.0600000016.940
60.1275000.652076.690003.760019.560
60.1275000.652076.690003.760019.560
60.1275000.7525066.45000016.61016.940
60.1275000.752516.6166.4500000016.940
60.12750.12500.7525066.4500000016.9416.61
60.127500.1250.7525066.4500000016.9416.61
60.1275000.7525066.4516.610000016.940
60.1275000.6544076.41000004.119.480
60.1275000.6775073.807.38000018.820
600000000000000
70.1275000.15220000016.240083.760
70.1275000.6522076.660003.790019.550
70.1275000.652276.6600003.790019.550
70.1275000.6522000076.663.790019.550
70.1275000.6522076.660003.790019.550
70.1275000.6522076.660003.790019.550
70.1275000.25020000049.050050.950
70.1275000.25020000049.050050.950
70.1275000.6522000003.7976.66019.550
70.1275000.652276.6600003.790019.550
70.12750.500.6522000003.790019.5576.66
70.127500.50.6522000003.790019.5576.66
70.1275000.65220076.66003.790019.550
70.1275000.2596000009.52041.3749.110
70.1275000.352200056.7807.020036.20
70000.1275000000001000
80.1275000.17080000025.340074.660
80.1275000.577070.40007.50022.10
80.1275000.57770.400007.50022.10
80.1275000.577000070.47.50022.10
80.1275000.577070.40007.50022.10
80.1275000.577070.40007.50022.10
80.1275000.25040000049.080050.920
80.1275000.25040000049.080050.920
80.1275000.577000007.570.4022.10
80.1275000.57770.400007.50022.10
80.12750.406300.577000007.50022.170.4
80.127500.40630.577000007.50022.170.4
80.1275000.5770070.4007.50022.10
80.1275000.2580000016.77033.8249.410
80.1275000.333300048.76012.980038.260
800000000000000
90.1275000.18930000032.650067.350
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90.1275000.501862.27000012.320025.410
90.1275000.5018000062.2712.320025.410
90.1275000.5018062.2700012.320025.410
90.1275000.5018062.2700012.320025.410
90.1275000.25060000049.110050.890
90.1275000.25060000049.110050.890
90.1275000.50180000012.3262.27025.410
90.1275000.501862.27000012.320025.410
90.12750.312500.50180000012.320025.4162.27
90.127500.31250.50180000012.320025.4162.27
90.1275000.50180062.270012.320025.410
90.1275000.25640000024.1026.1849.720
90.1275000.314300039.77019.670040.560
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100.1275000.20790000038.660061.340
100.1275000.4266051.2800018.840029.890
100.1275000.426651.28000018.840029.890
100.1275000.4266000051.2818.840029.890
100.1275000.4266051.2800018.840029.890
100.1275000.4266051.2800018.840029.890
100.1275000.25070000049.150050.850
100.1275000.25070000049.150050.850
100.1275000.42660000018.8451.28029.890
100.1275000.426651.28000018.840029.890
100.12750.218800.42660000018.840029.8951.28
100.127500.21880.42660000018.840029.8951.28
100.1275000.42660051.280018.840029.890
100.1275000.25480000031.53018.4450.030
100.1275000.295400029.63027.210043.170
100000.1275000000001000
110.1275000.22640000043.680056.320
110.1275000.3514035.5700028.140036.280
110.1275000.351435.57000028.140036.280
110.1275000.3514000035.5728.140036.280
110.1275000.3514035.5700028.140036.280
110.1275000.3514035.5700028.140036.280
110.1275000.25090000049.180050.820
110.1275000.25090000049.180050.820
110.1275000.35140000028.1435.57036.280
110.1275000.351435.57000028.140036.280
110.12750.12500.35140000028.140036.2835.57
110.127500.1250.35140000028.140036.2835.57
110.1275000.35140035.570028.140036.280
110.1275000.25330000039.05010.650.350
110.1275000.276400018.09035.780046.130
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120.1275000.2525000049.500050.50
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120.1275000.7525066.450016.6100016.940
120.1275000.7525066.450016.6100016.940
120.1275000.3505000035.6627.960036.380
120.1275000.3505000035.6627.960036.380
120.1275000.7525000016.61066.45016.940
120.1275000.752566.4500016.6100016.940
120.12750.500.7525000016.6100016.9466.45
120.127500.50.7525000016.6100016.9466.45
120.1275000.75250066.45016.6100016.940
120.1275000.3599000034.730029.8435.430
120.1275000.452500044.227.6200028.180
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130.1275000.3463000063.1800036.820
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130.1275000.4266000051.2818.840029.890
130.1275000.752553.9900029.0700016.940
130.1275000.7525053.990029.0700016.940
130.1275000.7525053.990029.0700016.940
130.1275000.4259000051.3618.70029.940
130.1275000.4259000051.3618.70029.940
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130.12750.406300.7525000029.0700016.9453.99
130.127500.40630.7525000029.0700016.9453.99
130.1275000.75250053.99029.0700016.940
130.1275000.4335000050.460020.1329.410
130.1275000.508800031.944300025.060
130000.1275000000001000
140.1275000.44000071.0200028.980
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140.1275000.5018000062.2712.320025.410
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140.1275000.7525000041.53041.53016.940
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140.12750.312500.7525000041.5300016.9441.53
140.127500.31250.7525000041.5300016.9441.53
140.1275000.75250041.53041.5300016.940
140.1275000.5071000061.620013.2425.140
140.1275000.56500022.1255.3100022.570
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150.1275000.5338000076.1100023.890
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150.1275000.577000070.47.50022.10
150.1275000.752529.0700053.9900016.940
150.1275000.7525029.070053.9900016.940
150.1275000.7525029.070053.9900016.940
150.1275000.5766000070.457.440022.110
150.1275000.5766000070.457.440022.110
150.1275000.7525000053.99029.07016.940
150.1275000.752529.0700053.9900016.940
150.12750.218800.7525000053.9900016.9429.07
150.127500.21880.7525000053.9900016.9429.07
150.1275000.75250029.07053.9900016.940
150.1275000.5807000069.95008.0921.950
150.1275000.621300014.0865.3900020.520
1500000000000000
160.1275000.6275000079.6800020.320
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160.1275000.6522000076.663.790019.550
160.1275000.752516.6100066.4500016.940
160.1275000.7525016.610066.4500016.940
160.1275000.7525016.610066.4500016.940
160.1275000.652000076.693.760019.560
160.1275000.652000076.693.760019.560
160.1275000.7525000066.45016.61016.940
160.1275000.752516.6100066.4500016.940
160.12750.12500.7525000066.4500016.9416.61
160.127500.1250.7525000066.4500016.9416.61
160.1275000.75250016.61066.4500016.940
160.1275000.6544000076.41004.119.480
160.1275000.67750007.3873.800018.820
160000.1275000000001000

Claims as granted

8 claims

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Classifications

49 codes
IPC · International Patent Classification
Section B — Performing operations; transporting
  • B01J23/00
  • B01J23/58
  • B01J23/648
  • B01J23/56
  • B01J37/02
  • B01J23/63
  • B01J23/46
  • B01J23/652
  • B01J23/656
  • B01J20/00
  • B01J21/00
  • B01J23/89
  • B01J23/40
  • B01J23/62
Section C — Chemistry; metallurgy
  • C40B30/08
  • C01B3/16
  • C40B40/18
USPC · US Patent Classification
502/326502/315502/302502/262502/324502/350502/261502/304502/74502/314502/415502/260502/252502/303502/338502/87502/328502/258502/313502/351502/349502/240502/334502/327502/332502/339502/316502/439502/355502/330502/336502/66

Claim changes

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File wrapper

⤢ drag to zoomJul 2006Jan 2007Jul 2007Jan 2008Jul 2008Jan 2009Jul 2009Jan 2010Jul 2010Jan 2011Jul 2011USPTOApplicantNon-final rejectionFinal rejectionNon-final rejectionNon-final rejectionFinal rejectionRequest for continued examinationNon-final rejectionResponse after final
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Pendency
5.3 y
1,943 days filing → grant
Office actions
9
non-final + final
Responses
9
2 RCE
Interviews
2
examiner interview summaries
Examiner
Cam N. Nguyen
art unit 1736 · TC 1700
Citations: 103 back · 10 forward

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Documents

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Chain of title

⤢ drag to zoom201020122014201620182020202220242026Owner 2
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