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测试了Nd3+:GGG单晶在可见和近红外波段的吸收光谱,并分析指认了它的实验能级,通过从头计算的DV-Xa方法计算得到了它的晶体场参数和旋轨耦合参数。用Nd3+:GGG在77K和300K的156个、88个实验能级,拟合了它的自由离子参数和晶体场参数,均方根误差(即拟合精度)σ分别为15.79和 11.48 cm-1。结果表明晶体场参数的拟合结果和从头计算值符合的很好。最后比较了拟合得到的Nd3+:GGG和已报道Nd3+:YAG 的自由离子参数和晶体场参数。 相似文献
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用高温固相法合成了Nd3+:GdNbO4多晶,确定了它的结构,研究了它的光致发光。Nd3+:GdNbO4是单斜结构,空间群为I2。采用内标法,测定了(1at%)Nd:GdNbO4的晶格参数.用Rietveld精修给出了Nd3+:GdNbO4的原子坐标。在808nm光激发下,观察到925nm、1065nm、1345nm三个发射带,分别来自于Nd3+的4F3/2→4I9/2、4I11/2、4I13/2跃迁,以1065nm处的发射谱带强度最强。分析表明Nd3+在GdNbO4有很强的晶场作用,是一种潜在的新型激光材料。 相似文献
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Nd3 :Gd3Ga5O12激光晶体的吸收与发光 总被引:2,自引:2,他引:0
测量了用提拉(CZ)法生长的Nd3+Gd3Ga5O12(NdGGG)激光晶体室温时的吸收光谱,其中在806 nm处的吸收系数最大(α=5.12 cm-1),吸收截面为4.03×10-20 cm2.用806 nm激发分别得到室温和10 K时的荧光光谱和荧光寿命,其中在1.06 μm附近晶体的荧光发射强度最强,2种温度时的峰值发射截面分别为1.7×10-19 cm2和1.9×10-19 cm2.0.6 at%和1.0 at%2种Nd3+掺杂浓度的晶体,室温时的荧光寿命分别为251 μs和240 μs,10 K温度时分别为253 μs和241 μs.与NdYAG晶体的荧光寿命、浓度猝灭效应和发射截面进行了比较,对结果进行了分析与讨论. 相似文献
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The photoluminescence properties of BiTaO4:Pr^3 and BiTaO4 at room temperature were studied, and the infrared transmission and diffusion reflection spectra of BiTaO4 were measured. The photoluminescence spectrum of BiTaO4 peaks at about 420, 440 and 465nm. There has an obvious excitation band from 330 to 370nm. The photoluminescence spectrum of BiTaO4:Pr^3 consists of the characteristic emission of Pr^3 , and its main peak is at 606 nm from ^3P0→^3H6 transition of Pr^3 . Its excitation spectrum consists of the wide band with maximum at 325nm, the wide band in the range of 375-430nm, and the characteristic excitation of Pr^3 .The bands at 325nm and 375-430nm may be from the absorption of the charge transfer transition of the tantalate group and defect energy levels in its forbidden band, respectively.There is energy transfer from host to Pr^3 . Because both the host density and photoluminescence peak intensity of BiTaO4:Pr^3 are superior to PbWO4, BiTaO4:Pr^3 may be a potential heavy scintillator. 相似文献
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The photoluminescence properties of BiTaO4∶Pr3+ and BiTaO4 at room temperature were studied, and the infrared transmission and diffusion reflection spectra of BiTaO4 were measured. The photoluminescence spectrum of BiTaO4 peaks at about 420, 440 and 465 nm. There has an obvious excitation band from 330 to 370 nm. The photoluminescence spectrum of BiTaO4∶Pr3+ consists of the characteristic emission of Pr3+, and its main peak is at 606 nm from 3P0→3H6 transition of Pr3+. Its excitation spectrum consists of the wide band with maximum at 325 nm, the wide band in the range of 375~430 nm, and the characteristic excitation of Pr3+. The bands at 325 nm and 375~430 nm may be from the absorption of the charge transfer transition of the tantalate group and defect energy levels in its forbidden band, respectively. There is energy transfer from host to Pr3+. Because both the host density and photoluminescence peak intensity of BiTaO4∶Pr3+ are superior to PbWO4, BiTaO4∶Pr3+ may be a potential heavy scintillator. 相似文献
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