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Synthesis and luminescent properties of Ce^(3+) doped LuAG nano-sized powders by mixed solvo-thermal method 被引量:12

Synthesis and luminescent properties of Ce^(3+) doped LuAG nano-sized powders by mixed solvo-thermal method
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摘要 Polycrystalline LuAG:Ce3+(cerium3+-doped lutetium aluminum garnet) powders were prepared by mixed solvo-thermal method.Fourier-transform IR spectroscopy(FTIR) and X-ray diffraction(XRD) measurements showed that the precursors were ethanol derivatives AlO(OH) crystal with hydroxyl and carbonate group.XRD results showed that phase of Lu2O3 disappeared with the precursors were annealed at 400 °C,cubic phase LuAG:Ce3+ appeared but only one diffraction peaks of LuAP(LuAlO3) at calcination temperature to 700 °C,a... Polycrystalline LuAG:Ce3+(cerium3+-doped lutetium aluminum garnet) powders were prepared by mixed solvo-thermal method.Fourier-transform IR spectroscopy(FTIR) and X-ray diffraction(XRD) measurements showed that the precursors were ethanol derivatives AlO(OH) crystal with hydroxyl and carbonate group.XRD results showed that phase of Lu2O3 disappeared with the precursors were annealed at 400 °C,cubic phase LuAG:Ce3+ appeared but only one diffraction peaks of LuAP(LuAlO3) at calcination temperature to 700 °C,a...
出处 《Journal of Rare Earths》 SCIE EI CAS CSCD 2010年第1期-,共6页 稀土学报(英文版)
基金 supported by National Natural Science Foundation of China (10774140) Knowledge Innovation Project of the Chinese Academy of Sciences (KJCX2-YW-M11) Specialized Research Fund for the Doctoral Program of Higher Education (20060358054) Special Foundation for Talents of Anhui Province,China (2007Z021)
关键词 LuAG:Ce3+ phosphors HYDROTHERMAL mixed solvo-thermal method photoluminescence rare earths LuAG:Ce3+ phosphors hydrothermal mixed solvo-thermal method photoluminescence rare earths
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  • 1王介强,高新睿,姜奉华,于庆华,郑少华.Synthesis Yttrium Aluminum Garnet Precursor via Homogeneous Precipitation under Microwave Irradiation[J].Journal of Rare Earths,2004,22(6):780-784. 被引量:7
  • 2van Eijk C W E. Nucl. Instr. Meth. A , 1997,392(2) : 285-290.
  • 3Lempicki A, Randles M H, Wisniew ski D, et al. IEEE Trans. Nucl. Sci. , 1995, 429(4) : 280-284.
  • 4van Eijk C W E, Andriessen J, Dorenbos P, et al. , Nucl. Instr. Meth. A, 1994, 348(2-3) : 546-550.
  • 5Nikl M, Mihokova E, Mares J A, et al. Phys. Stat. Sol. (a), 2000,181 : R10-R12.
  • 6Ogino H, Yoshikawa A, Lee J H, et al. J. Cryst. Growth, 2003, 253(3) : 314-318.
  • 7Yoshikawa A, Nikl M, Ogino H, et al, J. Cryst. Growth, 2003,250 ( 1 ) : 94-99.
  • 8Yoshikawa A, Ogino H, Lee J H, et al. Opt. Mater. ,2003, 24 (2) : 275-279.
  • 9Manalert R, Rahaman M N. J. Mater. Sci. ,1996,31(13) : 3453- 3458.
  • 10Tachiwaki T, Yoshinaka M, Hirota K, et al. Solid State Comm. , 2001, 119(11) :603-606.

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