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51.
白光LED用Eu~(2+)离子激活含氮铝酸盐发光粉的制备   总被引:1,自引:1,他引:0       下载免费PDF全文
采用高温固相反应法制备Sr3Al2O6-3x/2Nx∶Eu2+发光材料。发光光谱分析表明,该材料在400~550nm可见光激发下,发射光谱为峰值波长为600 nm的宽带谱。XRD分析结果显示,Sr3Al2O6-3x/2Nx与Sr3Al2O6的晶体结构相同。研究了Eu2+离子浓度对材料发光性能的影响,结果表明随着Eu2+离子浓度的增加,材料的发光强度呈现出先增强后减弱的趋势,当Eu2+浓度为15%时,发光强度最大。根据Dexter理论,其浓度猝灭机理是电四极-电四极的相互作用。引入Ce3+作为敏化剂,样品的发光强度明显增强。  相似文献   
52.
慈志鹏  王育华  张加弛 《中国物理 B》2010,19(5):57803-057803
Novel Y1 x yVO4:xDy3+,yBi3+(0.01 ≤ x ≤ 0.05,0 ≤ y ≤ 0.20) phosphors for light emitting diode(LED) were successfully synthesised by solid-state reaction.The calculation results of electronic structure show that YVO4 has a direct band gap with 3 eV at G.The top of the valence band is dominated by O 2p state and the bottom of the conduction band is mainly composed of O 2p and V 3d states.An efficient yellow emission under near-ultraviolet(365 nm) excitation is observed.Compared with the pure YVO4:Dy3+ samples,the Dy3+,Bi3+ co-doped samples show a more intensive emission peak(at 574 nm) and a new broad emission band(450-770 nm),due to the 4F9/2 6H13/2 transition of Dy3+ and the emission of the VO3 4 Bi3+ complex respectively.The optimum chromaticity index of Y1 x yVO4:xDy3+,yBi3+(0.01 ≤ x ≤ 0.05,0 ≤ y ≤ 0.20) is(0.447,0.497),which indicates that YVO4:Dy3+,Bi3+ has higher colour saturation than the commercial phosphor YAG:Ce3+.The effects of concentration of Dy3+,Bi3+,electric states and the photoluminescence properties are discussed in details.  相似文献   
53.
This work concerns the studies of energy transfers between Sm3+ and Eu3+ ions in some phosphates as new luminescent materials emitting in the orange-red color. The choose of ions is based on the possibility of quantum cutting process and the matrices are selected according to the 5d bands position of Sm3+ ion. The Sm3+ and Eu3+ doped YPO4, LaP5O14 and LaP3O9 are synthesized and spectroscopic studies in ultraviolet and vacuum ultraviolet ranges have been achieved.  相似文献   
54.
刘影  俞淳善  顾光瑞  田莲花 《发光学报》2013,34(9):1113-1117
采用高温固相法制备了红色荧光粉Ca4LaNb(W1-x Mo x)4O20∶Eu3+并研究了样品的发光性质。Ca4LaNbW4O20∶Eu3+的激发光谱中包含一个宽的激发带,峰值位于275 nm,归属于WO2-4基团的电荷迁移跃迁。随着Mo6+离子的掺入,Ca4LaNbW4O20∶Eu3+位于275 nm处的吸收带变宽,其原因是O2--Eu3+的电荷迁移跃迁增强。在Ca4LaNb(W1-x Mo x)4O20∶Eu3+的发射光谱中,400~500 nm间较宽的发射带属于WO2-4基团的发射带,而位于591 nm和616 nm的尖锐的发射峰分别属于Eu3+的5D0→7F1磁偶极跃迁和5D0→7F2电偶极跃迁发射。随着Mo6+离子浓度的增加,WO2-4基团的发射带强度下降,从而提高了色纯度。  相似文献   
55.
通过溶胶-凝胶法制备出不同Tb3+掺杂浓度和不同二次煅烧温度下的ZnAl2O4:Tb3+荧光粉, 并利用X射线衍射(XRD)和荧光光谱等对样品进行了表征。由XRD结果可知,当Tb3+掺杂的摩尔分数不大于9%,二次煅烧温度在600℃以上时,所得粉体为结晶性良好的尖晶石相。在紫外光激发下,ZnAl2O4:Tb3+荧光粉的发射光谱由位于488 nm(5D47F6)、542 nm(5D47F5)、587 nm(5D47F4 )和621.5 nm(5D47F3)的4个发射峰组成。研究发现,Tb3+的掺杂浓度和二次煅烧温度对样品发光强度有着重要影响,当Tb3+的摩尔分数为5%,二次煅烧温度为900℃时,ZnAl2O4:Tb3+荧光粉的发光最强,继续增加Tb3+掺杂浓度或提高煅烧温度,分别会出现浓度猝灭和温度猝灭现象。  相似文献   
56.
通过高温固相法合成了一系列Ba3La1-x(PO4)3∶xDy3+荧光粉材料。利用XRD测量样品的物相,结果显示样品为纯相Ba3La(PO4)3晶体。样品的激发光谱由一系列宽谱组成,峰值分别位于322,347,360,386,424,451 nm。在347 nm激发下,荧光粉在482 nm(4F9/2→6H15/2)和575 nm(4F9/2→6H13/2)处有很强的发射。研究了不同Dy3+掺杂浓度对样品发射光谱的影响,当Dy3+摩尔分数x=0.10时出现猝灭现象,浓度猝灭机理为电偶极-电偶极相互作用。确定了不同Dy3+掺杂浓度的Ba3La(PO4)3∶Dy3+的荧光寿命。Ba3La(PO4)3∶Dy3+荧光粉发射光谱的色坐标位于白光区域。  相似文献   
57.
K2Ca2(SO4)3 microcrystalline pure, doped with Eu, Tb and co-doped with Eu, Tb was prepared by solid-state diffusion method. Nanoparticles of these phosphors were also prepared by the chemical co-precipitation method. The formation of the compounds was confirmed by XRD. The particle size was calculated by broadening of the XRD peaks using Scherrer's formula. The particle size of nanocrystalline powder material was approximately found to be around 20 nm. Thermoluminescence and photoluminescence were studied to see the effect of co-doping and particle size. Tb3+ co-doping decreases the intensity in the Eu2+ doped phosphor due to the energy transfer and multiple de-excitations through various radiative and non-radiative processes. The sensitivity of K2Ca2(SO4)3:Eu,Tb microcrystalline phosphor was around 15 times more than LiF-TLD 100 and 7 times more than CaSO4:Dy. A high temperature peak (615 K) was observed in case of the nanoparticles, which was attributed to a particle size induced phase transition. This was confirmed by differential scanning calormetry measurements. The decrease in the sensitivity in case of nanoparticles is attributed to the particle size effect i.e. volume to surface ratio. Theoretical analysis of the glow curves was done by glow curve convolution deconvolution method to calculate trapping parameters of various peaks.  相似文献   
58.
59.
Solid‐state lighting (SSL) is now the most efficient source of high color quality white light ever created. Nevertheless, the blue InGaN light‐emitting diodes (LEDs) that are the light engine of SSL still have significant performance limitations. Foremost among these is the decrease in efficiency at high input current densities widely known as “efficiency droop.” Efficiency droop limits input power densities, contrary to the desire to produce more photons per unit LED chip area and to make SSL more affordable. Pending a solution to efficiency droop, an alternative device could be a blue laser diode (LD). LDs, operated in stimulated emission, can have high efficiencies at much higher input power densities than LEDs can. In this article, LEDs and LDs for future SSL are explored by comparing: their current state‐of‐the‐art input‐power‐density‐dependent power‐conversion efficiencies; potential improvements both in their peak power‐conversion efficiencies and in the input power densities at which those efficiencies peak; and their economics for practical SSL.  相似文献   
60.
采用高温固相法合成了系列Ce~(3+)和Ce~(3+)/Tb~(3+)激活的具有磷灰石结构荧光粉Ba_(10)(PO_4)_6F_2。用X射线衍射(XRD)、扫描电镜(SEM)、激发和发射(PLE和PL)光谱对样品进行了表征分析。研究结果表明:所合成的荧光粉Ba_(10)(PO_4)_6F_2∶Ce~(3+),Tb~(3+)具有氟磷灰石结构,样品微观呈现不规则形貌。荧光粉Ba10-x(PO4)6F2∶x Ce~(3+)的相对发射强度随着x增加而增强,当x=0.09时,荧光强度达到最大。荧光粉Ba_(10)(PO_4)_6F_2∶Ce~(3+),Tb~(3+)的激发光谱为240~330 nm的宽带,发射光谱呈现出Ce~(3+)的5d→4f跃迁紫外光(335和358 nm)发射和Tb~(3+)的4f→4f跃迁绿光(542 nm)发射。光谱特性表明,发光过程中存在Ce~(3+)→Tb~(3+)能量传递,能量传递效率可以达到60%。计算Ce~(3+)和Tb~(3+)的临界距离为0.79 nm,能量传递机理是偶极-偶极交互作用。此外,详细论述了Ce~(3+)和Tb~(3+)之间的能量传递和发光的过程。通过调节Tb~(3+)的掺杂浓度,对荧光粉发光色坐标与Tb~(3+)的掺杂浓度之间的关系也进行了研究,随着Tb~(3+)的掺杂量从0增加0.52,荧光粉Ba_(10)(PO_4)_6F_2∶Ce~(3+),Tb~(3+)的发射光谱色坐标可以从(0.149 4,0.045 1)蓝色区变化到(0.280 1,0.585 3)绿色区。  相似文献   
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