YAG powders with different Sm concentrations were synthesized by nitrate-citrate sol-gel combustion method. Phase evolution, morphology and luminescent properties of the obtained materials were characterized by XRD, F...YAG powders with different Sm concentrations were synthesized by nitrate-citrate sol-gel combustion method. Phase evolution, morphology and luminescent properties of the obtained materials were characterized by XRD, FESEM, photoluminescent excited by purple light, respectively. Powder X-ray diffraction showed that cubic YAG∶Sm crystallites were directly obtained at 800 ℃ from amorphous materials. The crystallization stage was characterized by an exothermic peak of DSC curve at 910 ℃. FESEM micrographs revealed that the resultant phosphors were agglomerated with an average particle size of about 300 nm. The photoluminescence spectra excited by 405 nm wavelength showed several obvious emission bands located in the 550~700 nm, corresponding to 4G5/2→6H5/2, 4G5/2→6H7/2, 4G5/2→6H9/2 transitions of Sm3+ ions, respectively. For luminescence property, the emission intensity of YAG∶Sm powders varied with the Sm contents and reached the maximum at 3%(mole fraction) Sm.展开更多
Samarium-doped yttrium aluminum garnet (YAG∶Sm3+) phosphors were synthesized by nitrate-citrate sol-gel combustion method. Phase evolution, morphology and absorbency of the obtained materials were characterized by XR...Samarium-doped yttrium aluminum garnet (YAG∶Sm3+) phosphors were synthesized by nitrate-citrate sol-gel combustion method. Phase evolution, morphology and absorbency of the obtained materials were characterized by XRD, FESEM, reflection spectrum, respectively. The experimental results showed that single-phase cubic YAG∶Sm3+ crystalline was directly obtained at 800 ℃ from amorphous precursor, and mostly developed at 900 ℃. The prepared powders were relatively agglomerated with an average particle size of 300 nm. The reflection spectrum showed that there were several apparent characteristic absorption peaks due to the 4f→4f inner shell electron transitions from the 6H5/2 ground state to 6FJ (J=9/2, 7/2 and 5/2) excited state of Sm3+. Moreover, the intensity of the characteristic peaks was enhanced with the increasing concentration of Sm3+ ions.展开更多
基金the National Defence Fundamental Research Project of China and Jiangsu Province Natural SciencesFund (BK2007724)
文摘YAG powders with different Sm concentrations were synthesized by nitrate-citrate sol-gel combustion method. Phase evolution, morphology and luminescent properties of the obtained materials were characterized by XRD, FESEM, photoluminescent excited by purple light, respectively. Powder X-ray diffraction showed that cubic YAG∶Sm crystallites were directly obtained at 800 ℃ from amorphous materials. The crystallization stage was characterized by an exothermic peak of DSC curve at 910 ℃. FESEM micrographs revealed that the resultant phosphors were agglomerated with an average particle size of about 300 nm. The photoluminescence spectra excited by 405 nm wavelength showed several obvious emission bands located in the 550~700 nm, corresponding to 4G5/2→6H5/2, 4G5/2→6H7/2, 4G5/2→6H9/2 transitions of Sm3+ ions, respectively. For luminescence property, the emission intensity of YAG∶Sm powders varied with the Sm contents and reached the maximum at 3%(mole fraction) Sm.
基金Project supported by 973 Research Project of China and Jiangsu Provincal Natural Sciences Fund (BK2007724)
文摘Samarium-doped yttrium aluminum garnet (YAG∶Sm3+) phosphors were synthesized by nitrate-citrate sol-gel combustion method. Phase evolution, morphology and absorbency of the obtained materials were characterized by XRD, FESEM, reflection spectrum, respectively. The experimental results showed that single-phase cubic YAG∶Sm3+ crystalline was directly obtained at 800 ℃ from amorphous precursor, and mostly developed at 900 ℃. The prepared powders were relatively agglomerated with an average particle size of 300 nm. The reflection spectrum showed that there were several apparent characteristic absorption peaks due to the 4f→4f inner shell electron transitions from the 6H5/2 ground state to 6FJ (J=9/2, 7/2 and 5/2) excited state of Sm3+. Moreover, the intensity of the characteristic peaks was enhanced with the increasing concentration of Sm3+ ions.