In this paper, the Gd2O3:Eu3+,Tb3+phosphors with different doping concentrations of Eu3+and Tb3+ions were prepared by a hydrothermal method for nanocrystals and the solid-phase method for microcrystals. The inter...In this paper, the Gd2O3:Eu3+,Tb3+phosphors with different doping concentrations of Eu3+and Tb3+ions were prepared by a hydrothermal method for nanocrystals and the solid-phase method for microcrystals. The interaction of the doped ions with different concentrations and the luminescent properties of the nanocrystals and microcrystals were studied systematically. Their structure and morphology of Gd2O3:Eu3+,Tb3+phosphors were analyzed by means of X-ray powder diffraction (XRD), transmission electron mi-croscopy (TEM) and scanning electron microscopy (SEM). The photoluminescence (PL) properties of Gd2O3:Eu3+,Tb3+phosphors were also systematically investigated. The results indicated that when the concentration of doped Eu3+was fixed at 1 mol.%, the emis-sion intensity of Eu3+ions was degenerating with Tb3+content increasing, while when the Tb3+content was fixed at 1 mol.%, the emission intensity of Tb3+ions reached a maximum when the concentration of Eu3+was 2 mol.%, implying that the energy transfer from Eu3+to Tb3+took place. In addition, Tb3+could inspire blue-green light and the Eu3+could inspire red light. Therefore co-doping systems by controlling the doping concentration and the hosts are the potential white emission materials.展开更多
Energy transfer in LaOBr:Tb_(0.0075),Gd_x(x<0.30)was investigated via excitation spectra,emission spectra,fluorescence decay function and X-ray diffraction.Effective energy transfer from Gd to Tb was found. With ex...Energy transfer in LaOBr:Tb_(0.0075),Gd_x(x<0.30)was investigated via excitation spectra,emission spectra,fluorescence decay function and X-ray diffraction.Effective energy transfer from Gd to Tb was found. With excitation of λ=275nm,no Gd^(3+)but only Tb^(3+)emission has been observed,and the integrated intensity of Tb^(3+)emission increases with increasing Gd content up to~5.5 times(in the sample of x=0.30)compared to that of the sample without Gd.The existense of Gd in the sample slows down the Tb^(3+)flourescence decay,and most likely the electric dipole-dipole interaction dominates the energy transfer process.展开更多
The energy transfer phenomenon of Ce→Gd→Tb via Gd sublattice and its depandence has been investigated in GdxY-1-xP5O14:Ce,Tb.The fluorescent and excitation spectra of Gdp5O14,Gdp5O14:Ce,Gdp5O14:Tb and GdxY-1xP5O14:C...The energy transfer phenomenon of Ce→Gd→Tb via Gd sublattice and its depandence has been investigated in GdxY-1-xP5O14:Ce,Tb.The fluorescent and excitation spectra of Gdp5O14,Gdp5O14:Ce,Gdp5O14:Tb and GdxY-1xP5O14:Ce,Tb and absorption spectrum of Gdp5O14 have been studied.The results show that as x is larger than 0.7.the energy transfer from Ce3+ via Gd3+to Tb3+ is obvious.The main reason for the energy transfer of Ce→Gd→Tb being efficient in the region x>0.7 is that the spectral overlap between Ce3+ emission spectrum and Gd3+ absorption spectrum increases and the structure changes from monoclinic Ⅱ(C2/c) layer structure(x<0.7) to monoclinic I(P21/c) ribbon structure.展开更多
Preparation, structure and spectral properties of rare earth pentaphosphates Gd_xY_(1-x)P_5O_(14): Ce, Tb have been investigated. When x>0. 7, the pentaphosphates belong to monoclinic crystal system Ⅰ with space g...Preparation, structure and spectral properties of rare earth pentaphosphates Gd_xY_(1-x)P_5O_(14): Ce, Tb have been investigated. When x>0. 7, the pentaphosphates belong to monoclinic crystal system Ⅰ with space group P2_1/c (C). When x≤0. 7. they belong to monoclinic crystal system Ⅱ with C2/c (C). The fluorescent and excitation spectra of Gdp_5O_(14), GdP_5O_(14): Ce. GdP_5O_(14) : Tb and Gd_xY_(1-x)P_5O_(14) : Ce, Tb have been studied and the energy transfer phenomenon from Ce(3+)→Gd(3+)→Tb(3+) by the medium of Gd(3+) sublattice has been determined.展开更多
基金supported by Natural Science Foundation of Jiangxi Province(20132BAB206008)
文摘In this paper, the Gd2O3:Eu3+,Tb3+phosphors with different doping concentrations of Eu3+and Tb3+ions were prepared by a hydrothermal method for nanocrystals and the solid-phase method for microcrystals. The interaction of the doped ions with different concentrations and the luminescent properties of the nanocrystals and microcrystals were studied systematically. Their structure and morphology of Gd2O3:Eu3+,Tb3+phosphors were analyzed by means of X-ray powder diffraction (XRD), transmission electron mi-croscopy (TEM) and scanning electron microscopy (SEM). The photoluminescence (PL) properties of Gd2O3:Eu3+,Tb3+phosphors were also systematically investigated. The results indicated that when the concentration of doped Eu3+was fixed at 1 mol.%, the emis-sion intensity of Eu3+ions was degenerating with Tb3+content increasing, while when the Tb3+content was fixed at 1 mol.%, the emission intensity of Tb3+ions reached a maximum when the concentration of Eu3+was 2 mol.%, implying that the energy transfer from Eu3+to Tb3+took place. In addition, Tb3+could inspire blue-green light and the Eu3+could inspire red light. Therefore co-doping systems by controlling the doping concentration and the hosts are the potential white emission materials.
文摘Energy transfer in LaOBr:Tb_(0.0075),Gd_x(x<0.30)was investigated via excitation spectra,emission spectra,fluorescence decay function and X-ray diffraction.Effective energy transfer from Gd to Tb was found. With excitation of λ=275nm,no Gd^(3+)but only Tb^(3+)emission has been observed,and the integrated intensity of Tb^(3+)emission increases with increasing Gd content up to~5.5 times(in the sample of x=0.30)compared to that of the sample without Gd.The existense of Gd in the sample slows down the Tb^(3+)flourescence decay,and most likely the electric dipole-dipole interaction dominates the energy transfer process.
文摘The energy transfer phenomenon of Ce→Gd→Tb via Gd sublattice and its depandence has been investigated in GdxY-1-xP5O14:Ce,Tb.The fluorescent and excitation spectra of Gdp5O14,Gdp5O14:Ce,Gdp5O14:Tb and GdxY-1xP5O14:Ce,Tb and absorption spectrum of Gdp5O14 have been studied.The results show that as x is larger than 0.7.the energy transfer from Ce3+ via Gd3+to Tb3+ is obvious.The main reason for the energy transfer of Ce→Gd→Tb being efficient in the region x>0.7 is that the spectral overlap between Ce3+ emission spectrum and Gd3+ absorption spectrum increases and the structure changes from monoclinic Ⅱ(C2/c) layer structure(x<0.7) to monoclinic I(P21/c) ribbon structure.
文摘Preparation, structure and spectral properties of rare earth pentaphosphates Gd_xY_(1-x)P_5O_(14): Ce, Tb have been investigated. When x>0. 7, the pentaphosphates belong to monoclinic crystal system Ⅰ with space group P2_1/c (C). When x≤0. 7. they belong to monoclinic crystal system Ⅱ with C2/c (C). The fluorescent and excitation spectra of Gdp_5O_(14), GdP_5O_(14): Ce. GdP_5O_(14) : Tb and Gd_xY_(1-x)P_5O_(14) : Ce, Tb have been studied and the energy transfer phenomenon from Ce(3+)→Gd(3+)→Tb(3+) by the medium of Gd(3+) sublattice has been determined.