Bismuth ion sensitized rare earth germanate luminescence materials and preparation methods thereof
Granted 22 Apr 2014 · no office action yet
Assignee: OCEAN'S KING LIGHTING SCIENCE & TECHNOLOGY CO., LTD.
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Inventors: Wenbo Ma, Mingjie Zhou, Zhaopu Shi · Examiner: Carol M Koslow · AU 1734 · TC 1700
Life of the application
6 dated eventsAbstract
Bismuth ion sensitized rare earth germanate luminescence materials and preparation methods are disclosed. The luminescence materials are the compounds of the following general formula (Y 1-x-y-z A x Bi y Ln z ) 2 GeO 5 . The preparation methods comprise: using oxides, carbonates, oxalates, acetates, nitrates or halides of Y, A, Bi, Ln and Ge as raw materials, wherein A is one of Gd, Lu, Sc and La, and Ln is at least one of Tm, Ho, Sm, Tb, Eu and Dy, homogeneously grinding the raw materials, sintering at 1300-1500° C. for 6-24 h, and then cooling them to room temperature to obtain the bismuth ion sensitized rare earth germanate luminescence materials.
Description
22 parts›FIELD OF THE INVENTION
The present invention relates to the luminescence materials and preparation methods, and more particularly to a bismuth ion sensitized rare earth germanate luminescence materials and preparation methods thereof.
›BACKGROUND OF THE INVENTION
Currently, as a new type of high-efficiency luminescence materials, rare earth luminescence materials has been developed into important luminescence materials in the fields of information display, lighting source, optoelectronic devices etc. By improving luminescence intensity of the rare earth luminescence materials, the properties of luminescence devices could be effectively improved, meanwhile, the luminescence efficiency of the luminescence devices could be improved and the luminescence devices could effectively save energy. Therefore, the research and application of luminescence materials with high luminescence efficiency always are the important research contents in the fields of materials chemistry and materials physics.
The germanate luminescence materials doped with rare earth ion have good photoluminescence properties, and could emit light with high fluorescence color and high brightness after been excitated, thus could be applied as trichromatic fluorescence of UV-LED. However, further improves the luminescence properties of the materials has been the targets of the researchers.
›SUMMARY OF THE INVENTION
The technical problem of the present invention to be solved is to provide bismuth ion sensitized rare earth germanate luminescence materials which may further increase photoluminescence properties of the germanate luminescence materials doped with rare earth ion.
The further technical problem of the present invention to be solved is to provide preparation methods of bismuth ion sensitized rare earth germanate luminescence materials, and the preparation methods are easy to carry out and the costs of such methods are low.
The technical solution to solve the technical problem in the present invention is: bismuth ion sensitized rare earth germanate luminescence materials, which are the compounds of the following general formula (Y 1-x-y-z A x Bi y Ln z ) 2 GeO 5 , wherein, the values of x, y and z are taken 0≦x<1, 0<y≦0.02, 0<z≦0.3, and x+y+z≦1, respectively, while A is one of Gd, Lu, Sc and La, and Ln is at least one of Tm, Ho, Sm, Tb, Eu and Dy.
In the bismuth ion sensitized rare earth germanate luminescence materials, preferably, the values of x, y and z are taken 0≦x≦0.5, 0<y≦0.01, 0<z≦0.2, respectively.
The preparation methods of the bismuth ion sensitized rare earth germanate luminescence materials comprise: using oxides, carbonates, oxalates, acetates, nitrates or halides of Y, A, Bi, Ln and Ge as raw materials, wherein A is one of Gd, Lu, Sc and La, and Ln is at least one of Tm, Ho, Sm, Tb, Eu and Dy, homogeneously grinding the raw materials, sintering at 1300-1500° C. for 6-24 h, and then cooling them to room temperature to obtain the bismuth ion sensitized rare earth germanate luminescence materials.
In the preparation methods of the bismuth ion sensitized rare earth germanate luminescence materials, preferably, homogeneously grinding the raw materials, sintering at 1350-1450° C. for 10-20 h, and then cooling them to room temperature to obtain the bismuth ion sensitized rare earth germanate luminescence materials.
In the preparation methods of the bismuth ion sensitized rare earth germanate luminescence materials, preferably, the raw materials are added in a molar ratio of each element in chemical formula (Y 1-x-y-z A x Bi y Ln z ) 2 GeO 5 , wherein, the values of x, y and z are taken 0≦x<1, 0<y≦0.02, 0<z≦0.3, and x+y+z≦1, respectively.
In the preparation methods of the bismuth ion sensitized rare earth germanate luminescence materials, preferably, the values of x, y and z are taken 0≦x≦0.5, 0<y≦0.01, 0<z≦0.2, respectively.
In the preparation methods of the bismuth ion sensitized rare earth germanate luminescence materials, the purity of the raw materials is not lower than 99.99% when the raw materials are oxides of Y, A, Bi, Ln and Ge.
In the preparation methods of the bismuth ion sensitized rare earth germanate luminescence materials, the purity of the raw materials is not lower than analytically pure when the raw materials are carbonates, oxalates, acetates, nitrates or halides of Y, A, Bi, Ln and Ge.
In the present invention, bismuth ion (Bi 3+ ) is introduced into the germanate luminescence materials doped with rare earth, and through the sensitization of the bismuth ion to other rare earth ion, the photoluminescence properties of germanate luminescence materials is significantly improved under same exciting conditions, while the wave length of the emitting light has not been changed. The luminescence materials in the present invention have good photoluminescence properties, could emit light with high color purity and high brightness after been stimulated, thus could be applied in light-emitting devices (LED).
The preparation methods of the present invention could prepare luminescence materials which have good photoluminescence properties, and the luminescence materials could emit light with high color purity and high brightness after been excitated. The process comprises a few steps, the process is relatively simple, and the process conditions are easy to carry out. The methods could provide products of high quality without introducing impurity. The process conditions are not required stringently, thus the costs of the methods are low, so that the preparation methods could be widely applied in the manufacture of luminescence materials.
›BRIEF DESCRIPTION OF THE DRAWINGS
Further description of the present invention will be illustrated, which combined with drawings and embodiments in the drawings:
FIG. 1 shows the differences in the emission spectra of the comparison of the (Y 0.9825 Bi 0.0075 Tm 0.01 ) 2 GeO 5 materials which is prepared in embodiment 1, and the (Y 0.99 Tm 0.01 ) 2 GeO 5 materials, as they are tested in same conditions of excitation wavelength of 314 nm;
FIG. 2 shows the differences in the emission spectra of the comparison of the (Y 0.9525 Bi 0.0075 Th 0.04 ) 2 GeO 5 materials which is prepared in embodiment 6, and the (Y 0.96 Tb 0.04 ) 2 GeO 5 materials, as they are tested in same conditions of excitation wavelength of 314 nm;
FIG. 3 shows the differences in the emission spectra of the comparison of the (Y 0.9525 Bi 0.0075 Eu 0.04 ) 2 GeO 5 materials which is prepared in embodiment 7, and the (Y 0.96 Eu 0.04 ) 2 GeO 5 materials, as they are tested in same conditions of excitation wavelength of 314 nm;
FIG. 4 shows the differences in the emission spectra of the comparison of the (Y 0.9625 Bi 0.0075 Tm 0.01 Tb 0.01 Eu 0.01 ) 2 GeO 5 materials which is prepared in embodiment 18, and the (Y 0.97 Tm 0.01 Tb 0.01 Eu 0.01 ) 2 GeO 5 materials, as they are tested in same conditions of excitation wavelength of 360 nm;
FIG. 5 shows the differences in the emission spectra of the comparison of the (Y 0.9625 Bi 0.0075 Tm 0.01 Tb 0.01 Eu 0.01 ) 2 GeO 5 materials which is prepared in embodiment 18 and the (Y 0.97 Tm 0.01 Tb 0.01 Eu 0.01 ) 2 GeO 5 materials, as they are tested in same conditions of excitation wavelength of 314 nm;
The emission spectra of the above figures are tested by fluorescence spectrophotometer of Daojin RF-5301PC, and the test conditions are: slit at 1.5 nm, high sensitivity.
›Embodiment 1
Preparation of (Y 0.9825 Bi 0.0075 Tm 0.01 ) 2 GeO 5 by High Temperature Solid State Method
Adding 0.9825 mmol Y 2 O 3 , 0.0075 mmol Bi 2 O 3 , 0.01 mmol Tm 2 O 3 and 1 mmol GeO 2 into a agate mortar, all of the oxidate with purity of 99.99%, grinding the oxidate homogeneously in the agate mortar to mix well, transferring the grinded powder to a corundum crucible, and placing the corundum crucible into a high-temperature box-type furnace and sintering at 1350° C. for 10 h, and then cooling the sintered product to room temperature and grinding them in mortar, finally obtaining the bismuth ion sensitized rare earth germanate luminescence materials (Y 0.9825 Bi 0.0075 Tm 0.01 ) 2 GeO 5 materials, which can emit blue light. FIG. 1 shows the differences in the emission spectra of the comparison of the (Y 0.9825 Bi 0.0075 Tm 0.01 ) 2 GeO 5 which is prepared in embodiment 1, and the (Y 0.99 Tm 0.01 ) 2 GeO 5 materials, as they are tested in same conditions of excitation wavelength of 314 nm. As can be seen from the FIG. 1 , the introduction of Bi 3+ greatly enhanced the luminescence of Tm 3+ , the luminescence intensity of the (Y 0.9825 Bi 0.0075 Tm 0.01 ) 2 GeO 5 is 12 times of that of (Y 0.99 Tm 0.01 ) 2 GeO 5 , under the excitation by excitation wavelength of 314 nm, wherein, the intensity is a relative value and its unit can be selected anyway.
›Embodiment 2
Preparation of (Lu 0.9825 Bi 0.0075 Tm 0.01 ) 2 GeO 5 by High Temperature Solid State Method
Adding 1.965 mmol Lu(NO 3 ) 3 , 0.015 mmol Bi(NO 3 ) 3 , 0.02 mmol Tm(NO 3 ) 3 and 1 mmol GeO 2 into a agate mortar, grinding the oxidate homogeneously in the agate mortar to mix well, transferring the grinded powder to a corundum crucible, and placing the corundum crucible into a high-temperature box-type furnace and sintering at 1450° C. for 8 h, and then cooling the sintered product to room temperature and grinding them in mortar, finally obtaining the bismuth ion sensitized rare earth germanate luminescence materials (Lu 0.9825 Bi 0.0075 Tm 0.01 ) 2 GeO 5 , which can emit blue light.
›Embodiment 3
Preparation of (Y 0.986 Bi 0.004 Ho 0.01 ) 2 GeO 5 by High Temperature Solid State Method
Adding 0.986 mmol Y 2 O 3 , 0.004 mmol Bi 2 O 3 , 0.01 mmol Ho 2 O 3 and 1 mmol GeO 2 into a agate mortar, grinding the oxidate homogeneously in the agate mortar to mix well, transferring the grinded powder to a corundum crucible, and placing the corundum crucible into a high-temperature box-type furnace and sintering at 1300° C. for 24 h, and then cooling the sintered product to room temperature and grinding them in mortar, finally obtaining the bismuth ion sensitized rare earth germanate luminescence materials (Y 0.986 Bi 0.004 Ho 0.01 ) 2 GeO 5 , which can emit green light.
›Embodiment 4
Preparation of (Y 0.976 Bi 0.004 Sm 0.02 ) 2 GeO 5 by High Temperature Solid State Method
Adding 0.976 mmol Y 2 O 3 , 0.004 mmol Bi 2 O 3 , 0.02 mmol Sm 2 O 3 and 1 mmol GeO 2 into a agate mortar, grinding the oxidate homogeneously in the agate mortar to mix well, transferring the grinded powder to a corundum crucible, and placing the corundum crucible into a high-temperature box-type furnace and sintering at 1500° C. for 6 h, and then cooling the sintered product to room temperature and grinding them in mortar, finally obtaining the bismuth ion sensitized rare earth germanate luminescence materials (Y 0.976 Bi 0.004 Sm 0.02 ) 2 GeO 5 , which can emit red light.
›Embodiment 5
Preparation of (Y 0.976 Bi 0.004 Dy 0.02 ) 2 GeO 5 by High Temperature Solid State Method
Adding 0.976 mmol Y 2 O 3 , 0.004 mmol Bi 2 O 3 , 0.02 mmol Dy 2 O 3 and 1 mmol GeO 2 into a agate mortar, grinding the oxidate homogeneously in the agate mortar to mix well, transferring the grinded powder to a corundum crucible, and placing the corundum crucible into a high-temperature box-type furnace and sintering at 1380° C. for 20 h, and then cooling the sintered product to room temperature and grinding them in mortar, finally obtaining the bismuth ion sensitized rare earth germanate luminescence materials (Y 0.976 Bi 0.004 DY 0.02 ) 2 GeO 5 which can emit white light.
›Embodiment 6
Preparation of (Y 0.9525 Bi 0.0075 Tb 0.04 ) 2 GeO 5 by High Temperature Solid State Method
Adding 0.9525 mmol Y 2 O 3 , 0.0075 mmol Bi 2 O 3 , 0.02 mmol Tb 4 O 7 and 1 mmol GeO 2 into a agate mortar, grinding the oxidate homogeneously in the agate mortar to mix well, and other steps are as the same as embodiment 1, finally obtaining the bismuth ion sensitized rare earth germanate luminescence materials (Y 0.9525 Bi 0.0075 Tb 0.04 ) 2 GeO 5 which can emit green light. FIG. 2 shows the differences in the emission spectra of the comparison of the the (Y 0.9525 Bi 0.0075 Tb 0.04 ) 2 GeO 5 materials which is prepared in embodiment 6, and the (Y 0.96 Tb 0.04 ) 2 GeO 5 materials, as they are tested in same conditions of excitation wavelength of 314 nm. As can be seen from the FIG. 2 , the introduction of Bi 3+ greatly enhanced the luminescence of Tb 3+ . The luminescence intensity of the (Y 0.9525 Bi 0.0075 Tb 0.04 ) 2 GeO 5 is 11 times of that of ((Y 0.96 Tb 0.04 ) 2 GeO 5 , under the excitation by excitation wavelength of 314 nm.
›Embodiment 7
Preparation of (Y 0.9525 Bi 0.0075 Eu 0.04 ) 2 GeO 5 by High Temperature Solid State Method
Adding 0.9525 mmol Y 2 O 3 , 0.0075 mmol Bi 2 O 3 , 0.04 mmol Eu 2 O 3 and 1 mmol GeO 2 into a agate mortar, grinding the oxidate homogeneously in the agate mortar to mix well, and other steps are as the same as embodiment 1, finally obtaining the bismuth ion sensitized rare earth germanate luminescence materials (Y 0.9525 Bi 0.0075 Eu 0.04 ) 2 GeO 5 which can emit red light. FIG. 3 shows the differences in the emission spectra of the comparison of the (Y 0.9525 Bi 0.0075 Eu 0.04 ) 2 GeO 5 materials which is prepared in embodiment 7, and the (Y 0.96 Eu 0.04 ) 2 GeO 5 materials, as they are tested in same conditions of excitation wavelength of 314 nm. As can be seen from the FIG. 3 , the introduction of Bi 3+ greatly enhanced the luminescence of Eu 3+ . The luminescence intensity of the (Y 0.96 Eu 0.04 ) 2 GeO 5 is 6 times of that of (Y 0.96 Eu 0.04 ) 2 GeO 5 , under the excitation by excitation wavelength of 314 nm.
›Embodiment 8
Preparation of (Y 0.886 Gd 0.1 Bi 0.004 Tm 0.01 ) 2 GeO 5 by High Temperature Solid State Method
Adding 0.886 mmol Y 2 O 3 , 0.1 mmol Gd 2 O 3 , 0.004 mmol Bi 2 O 3 , 0.01 mmol Tm 2 O 3 and 1 mmol GeO 2 into a agate mortar, grinding the oxidate homogeneously in the agate mortar to mix well, and other steps are as the same as embodiment 1, finally obtaining the bismuth ion sensitized rare earth germanate luminescence materials (Y 0.886 Gd 0.1 Bi 0.004 Tm 0.01 ) 2 GeO 5 which can emit blue light.
›Embodiment 10
Preparation of (Y 0.686 Gd 0.3 Bi 0.004 H 0.01 ) 2 GeO 5 by High Temperature Solid State Method
Adding 0.686 mmol Y 2 O 3 , 0.3 mmol Gd 2 O 3 , 0.004 mmol Bi 2 O 3 , 0.01 mmol Ho 2 O 3 and 1 mmol GeO 2 into a agate mortar, grinding the oxidate homogeneously in the agate mortar to mix well, and other steps are as the same as embodiment 1, finally obtaining the bismuth ion sensitized rare earth germanate luminescence materials (Y 0.686 Gd 0.3 Bi 0.004 Ho 0.01 ) 2 GeO 5 which can emit green light.
›Embodiment 11
Preparation of (Y 0.196 Sc 0.7 Bi 0.004 Sm 0.1 ) 2 GeO 5 by High Temperature Solid State Method
Adding 0.196 mmol Y 2 O 3 , 0.7 mmol Sc 2 O 3 , 0.004 mmol Bi 2 O 3 , 0.1 mmol Sm 2 O 3 and 1 mmol GeO 2 into a agate mortar, grinding the oxidate homogeneously in the agate mortar to mix well, and other steps are as the same as embodiment 1, finally obtaining the bismuth ion sensitized rare earth germanate luminescence materials (Y 0.196 Se 0.7 Bi 0.004 Sm 0.1 ) 2 GeO 5 which can emit red light.
›Embodiment 12
Preparation of (Y 0.076 La 0.9 Bi 0.004 DY 0.02 ) 2 GeO 5 by High Temperature Solid State Method
Adding 0.076 mmol Y 2 O 3 , 0.9 mmol La 2 O 3 , 0.004 mmol Bi 2 O 3 , 0.02 mmol Dy 2 O 3 and 1 mmol GeO 2 into a agate mortar, grinding the oxidate homogeneously in the agate mortar to mix well, and other steps are as the same as embodiment 1, finally obtaining the bismuth ion sensitized rare earth germanate luminescence materials (Y 0.076 La 0.9 Bi 0.004 Dy 0.02 ) 2 GeO 5 which can emit white light.
›Embodiment 13
Preparation of (Y 0.596 Gd 0.1 Bi 0.004 Tb 0.3 ) 2 GeO 5 by High Temperature Solid State Method
Adding 1.192 mmol Y(CH 3 COO) 3 , 0.2 mmol Gd(CH 3 COO) 3 , 0.008 mmol Bi(CH 3 COO) 3 , 0.6 mmol Tb(CH 3 COO) 3 and 1 mmol GeO 2 into a agate mortar, grinding the oxidate homogeneously in the agate mortar to mix well, and other steps are as the same as embodiment 1, finally obtaining the bismuth ion sensitized rare earth germanate luminescence materials (Y 0.596 Gd 0.1 Bi 0.004 Tb 0.3 ) 2 GeO 5 which can emit green light.
›Embodiment 14
Preparation of (Y 0.746 Gd 0.1 Bi 0.004 Eu 0.15 ) 2 GeO 5 by High Temperature Solid State Method
Adding 1.492 mmol YCl 3 , 0.2 mmol GdCl 3 , 0.008 mmol BiCl 3 , 0.3 mmol EuCl 3 and 1 mmol GeO 2 into a agate mortar, grinding the oxidate homogeneously in the agate mortar to mix well, and other steps are as the same as embodiment 1, finally obtaining the bismuth ion sensitized rare earth germanate luminescence materials (Y 0.746 Gd 0.1 Bi 0.004 Eu 0.15 ) 2 GeO 5 which can emit red light.
›Embodiment 15
Preparation of (Y 0.485 La 0.5 Bi 0.005 Tm 0.01 ) 2 GeO 5 by High Temperature Solid State Method
Adding 0.485 mmol Y 2 O 3 , 0.5 mmol La 2 O 3 , 0.005 mmol Bi 2 O 3 , 0.01 mmol Tm 2 O 3 and 1 mmol GeO 2 into a agate mortar, grinding the oxidate homogeneously in the agate mortar to mix well, and other steps are as the same as embodiment 1, finally obtaining the bismuth ion sensitized rare earth germanate luminescence materials (Y 0.485 La 0.5 Bi 0.005 Tm 0.01 ) 2 GeO 5 which can emit blue light.
›Embodiment 16
Preparation of (Y 0.88 Lu 0.1 Bi 0.01 Tm 0.01 ) 2 GeO 5 by High Temperature Solid State Method
Adding 0.88 mmol Y 2 (C 2 O 4 ) 3 , 0.01 mmol Lu 2 (C 2 O 4 ) 3 , 0.01 mmol Bi 2 (C 2 O 4 ) 3 , 0.01 mmol Tm 2 O 3 and 1 mmol GeO 2 into a agate mortar, grinding the oxidate homogeneously in the agate mortar to mix well, and other steps are as the same as embodiment 1, finally obtaining the bismuth ion sensitized rare earth germanate luminescence materials (Y 0.88 Lu 0.1 Bi 0.0 ) 2 GeO 5 which can emit blue light.
›Embodiment 17
Preparation of (Y 0.87 Sc 0.1 Bi 0.02 Tm 0.01 ) 2 GeO 5 by High Temperature Solid State Method
Adding 0.87 mmol Y 2 (CO 3 ) 3 , 0.1 mmol Sc 2 (CO 3 ) 3 , 0.02 mmol Bi 2 (CO 3 ) 3 , 0.01 mmol Tm 2 O 3 and 1 mmol GeO 2 into a agate mortar, grinding the oxidate homogeneously in the agate mortar to mix well, and other steps are as the same as embodiment 1, finally obtaining the bismuth ion sensitized rare earth germanate luminescence materials (Y 0.87 Sc 0.1 Bi 0.02 Tm 0.01 ) 2 GeO 5 which can emit blue light.
›Embodiment 18
Preparation of (Y 0.9625 Bi 0.0075 Tm 0.01 Tb 0.01 Eu 0.01 ) 2 GeO 5 by High Temperature Solid State Method
Adding 0.9625 mmol Y 2 O 3 , 0.0075 mmol Bi 2 O 3 , 0.01 mmol Tm 2 O 3 , 0.005 mmol Tb 4 O 7 , 0.01 mmol Eu 2 O 3 and 1 mmol GeO 2 , grinding homogeneously in a agate mortar to mix well, and other steps are as the same as embodiment 1, finally obtaining the bismuth ion sensitized rare earth germanate luminescence materials (Y 0.9625 Bi 0.0075 Tm 0.01 Tb 0.01 Eu 0.01 ) 2 GeO 5 which can emit white light. FIG. 4 is the emission spectra figure of the comparison of the (Y 0.9625 Bi 0.0075 Tm 0.01 Tb 0.01 Eu 0.01 ) 2 GeO 5 materials prepared in this embodiment, and the (Y 0.97 Tm 0.01 Tb 0.01 Eu 0.01 ) 2 GeO 5 materials, they are tested in same conditions of excitation wavelength of 360 nm. As shown in FIG. 4 , under the excitation by excitation wavelength of 360 nm, the introduction of Bi 3+ has not enhanced the luminescence of Tm 3+ , but greatly enhanced the blue, green and red light luminescence intensity of Tb 3+ and Eu 3+ emitted by luminescence materials in 470˜630 nm, thus the (Y 0.9625 Bi 0.0075 Tm 0.01 Tb 0.01 Eu 0.01 ) 2 GeO 5 prepared in this embodiment has higher color rendering index. FIG. 5 is the emission spectra figure of the comparison of the (Y 0.9625 Bi 0.0075 Tm 0.01 Tb 0.01 Eu 0.01 ) 2 GeO 5 materials prepared in embodiment 18, and the (Y 0.97 Tm 0.01 Tb 0.01 Eu 0.01 ) 2 GeO 5 materials, they are tested in same conditions of excitation wavelength of 314 nm. As shown in FIG. 5 , under the excitation by excitation wavelength of 314 nm, the introduction of Bi 3+ greatly enhanced the luminescence of Tm 3± , Tb 3+ and Eu 3+ , thus the(Y 0.9625 Bi 0.0075 Tm 0.01 Tb 0.01 Eu 0.01 ) 2 GeO 5 prepared in this embodiment has higher luminescence brightness.
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