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31.
A series of Ce3+,Eu2+ and Ce3+-Eu2+ doped Ca9Al(PO47 phosphors are synthesized by a high temperature solid-state method.Under 291 nm excitation,Ca9Al(PO47:Ce3+ has one emission band at 356 nm,which is attributed to4f°5d1→4f1 transition of Ce3+.Under 305 nm excitation,Ca9Al(PO47:Eu2+ presents one emission band at 445 nm,which is assigned to 4f65d1→4f7 transition of Eu2+.Energy transfer from Ce3+ to Eu2+ in Ca9Al(PO47 is validated and proved to be a resonant type via a quadrupole-quadrupole interaction.Critical distance(Rc) of Ce3+ to Eu2+ in Ca9Al(PO47 is calculated to be 1.264 nm.Moreover,the emission intensity of Ca9Al(PO47:Ce3+,Eu2+ can be tuned by properly adjusting the relative doping composition of Ce3+/Eu2+.  相似文献   
32.
LiCaBO3:Eu3+ phosphor was synthesized by high solid-state reaction method, and its luminescent characteristics were investigated. The emission and excitation spectra of LiCaBO3:Eu3+ phosphors exhibited that the phosphors could be effectively excited by near ultraviolet (400 nm) and blue (470 nm) light, and emitted red light. The effect of Eu3+ concentration on the emission spectrum of LiCaBO3:Eu3+ phos-phor was studied. The results showed that the emission intensity increased with increasing Eu3~ concentration, and then decreased because of concentration quenching. It reached the maximum at 3mol.% Eu3+, and the concentration self-quenching mechanism was the d-d interaction according to the Dexter theory. Under the conditions of charge compensator Li+, Na+ or K+ incorporated in LiCaBO3, the emission intensities of LiCaBO3:Eu3+ phosphor were enhanced.  相似文献   
33.
采用固相法制备了LiCaBO3∶Dy3+发光材料. 材料的发射光谱为一多峰宽谱, 主峰分别为484、577和668nm; 监测577nm发射峰, 对应的激发光谱为一主峰位于331、368、397、433、462和478nm的宽谱. 研究了Dy3+浓度对材料发射光谱及发光强度的影响, 结果随Dy3+浓度的增大, 材料的黄、蓝发射峰强度比(Y/B)逐渐增大; 同时, 发光强度呈现先增大后减小的趋势, 最大值对应的Dy3+浓度为3.00mol%, 其浓度猝灭机理为电偶极电偶极相互作用. 引入Li+、Na+或K+可增强材料的发射强度. InGaN管芯激发下的LiCaBO3∶Dy3+材料呈现很好的白光发射, 色坐标为x=0.3001, y=0.3152.  相似文献   
34.
Dy3+激活的LiCaBO3材料发光特性研究   总被引:1,自引:0,他引:1  
采用固相法制备了LiCaBO3∶Dy3+发光材料. 材料的发射光谱为一多峰宽谱, 主峰分别为484、577和668nm; 监测577nm发射峰, 对应的激发光谱为一主峰位于331、368、397、433、462和478nm的宽谱. 研究了Dy3+浓度对材料发射光谱及发光强度的影响, 结果随Dy3+浓度的增大, 材料的黄、蓝发射峰强度比(Y/B)逐渐增大; 同时, 发光强度呈现先增大后减小的趋势, 最大值对应的Dy3+浓度为3.00mol%, 其浓度猝灭机理为电偶极电偶极相互作用. 引入Li+、Na+或K+可增强材料的发射强度. InGaN管芯激发下的LiCaBO3∶Dy3+材料呈现很好的白光发射, 色坐标为x=0.3001, y=0.3152.  相似文献   
35.
Bi3+激活的Sr2SiO4材料发光特性研究   总被引:1,自引:0,他引:1  
采用溶胶-凝胶法制备了Sr2SiO4:Bi3+发光材料.X射线衍射谱显示其为纯相的Sr2SiO4晶体.测量了Sr2SiO4∶ Bi3+材料的激发与发射光谱,结果显示,材料的发射光谱为一单峰宽带,主峰位于441nm处;监测441nm发射峰,所得材料的激发光谱为一主峰位于376nm处的单峰宽带.研究了Bi3+掺杂浓度对Sr2SiO4∶ Bi3+材料发射光谱的影响,结果显示,随Bi3+掺杂浓度的增大,Sr2SiO4∶ Bi3+材料的发射光谱峰值强度表现出先增大后减小的趋势,在Bi3+掺杂物质的量浓度为3%时,可获得最大的峰值强度.加入电荷补偿剂Li+、Na+和K+,均提高了Sr2SiO4∶ Bi3+材料发射光谱峰值强度,其中以加入Li+的情况最明显.  相似文献   
36.
In order to prepare fluorescent material for white Light Emitting Diodes (LEDs), a new Eu^3+ activated molybdate phosphor SrMoO4 was fabricated with solid-state method. X-ray diffraction (XRD) showed that the doping of trivalent europium ion reduced the lattice parameters. The excitation and emission spectra indicated that this phosphor could be excited effectively by the visible light, and then emitted red light with the peaks located at 616 and 624 nm. The influence of Eu^3+ concentration on the luminescent properties of Eu^3+ doped SrMoO4 was investigated and the 25% (mole fraction) was the appropriate molar concentration. The reaction time and temperature had obvious effect on the luminescent properties. The luminescent intensity reached the strongest when it was sintered at 800 ℃ for 3 h.  相似文献   
37.
LiCaPO4:Eu3+材料制备白光LED及其发光特性   总被引:7,自引:7,他引:0  
采用高温固相法制备了LiCaPO4:Eu3+红色发光材料,研究了Eu3+掺杂浓度、R+或Cl-等对材料发光性质的影响.结果显示,在399 nm近紫外光激发下,材料呈多峰发射,分别由Eu3+的5DO→7FJ(J=0,1,2,3,4)能级跃迁产生,主峰为612 nm;监测612 nm发射峰,所得激发光谱由O2-→Eu3+电...  相似文献   
38.
KBaPO4:Tb3+材料制备及其发光特性   总被引:2,自引:0,他引:2  
采用高温固相法合成了KBaPO4:Tb3+绿色发光荧光粉,并研究了材料的发光性质.KBaPO4:Tb3+材料呈多峰发射,发射峰位于437、490、545、586和622 nm,分别对应Tb3+的5D3→7F4和5D4→7FJ=6,5,4,3跃迁发射,主峰为545 nm;监测545 nm发射峰,所得激发光谱由4f 7-5d1的宽带吸收(200~330 nm)和4f-4f电子吸收(330~400 nm)组成,主峰为380 nm.研究了Tb3+掺杂浓度,电荷补偿剂Li+、Na+、K+和Cl-,及敏化剂Ce3+对KBaPO4:Tb3+材料发射强度的影响.结果显示,调节激活剂浓度、添加电荷补偿剂或敏化剂均可在很大程度上提高材料的发射强度.上述结果表明KBaPO4:Tb3+材料是一种很好的近紫外光激发型高效绿色发光荧光粉.  相似文献   
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