掺钐LLSZFB玻璃的发光和能量转移特性

G. Anjaiah, T. Sasikala, P. Kistaiah
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引用次数: 5

摘要

近年来,稀土离子掺杂硼酸盐玻璃系统因其独特的性能在光子学领域得到了广泛的应用。本研究的目的是通过能量转移机制研究sm3 +离子浓度对氟硼酸铅玻璃发光性能的影响。化学成分为20pb_2 . 10li2o . 5sro . 5zno的掺钐氟硼酸铅玻璃。B2O3 (60 x)。采用熔体淬火法制备xSm2O3 (x = 0.1、0.5、1.0、1.5和2.0 mol %)。从光吸收、光致发光和衰减分析等方面详细研究了其随浓度变化的发光特性。采用Judd-Ofelt (J-O)理论分析了光吸收光谱。利用吸收带的实验振荡强度来确定J-O参数。利用J-O参数Ωλ (λ = 2,4和6)和发光数据得到了几个辐射参数。从发光光谱中可以看出,较高浓度的Sm3+离子(x≥0.5 mol %)开始猝灭。4G5/2→6h7 /2在较低掺杂浓度(x= 0.1和0.5 mol%)下呈单指数衰减曲线,在较高掺杂浓度(x≥1 mol%)下呈非指数衰减曲线。浓度猝灭是由于Sm3+离子间的交叉弛豫引起的能量转移。当S = 6时,非指数曲线符合inokti - hirayama模型,表明Sm3+ - Sm3+离子之间的能量传递为偶极子-偶极子型。计算出的制备玻璃的颜色坐标位于CIE图的红橙色区域内。所有实验结果表明,0.5 mol% Sm3+离子掺杂llszfb玻璃可以成为固态照明和显示应用的可能选择。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Concentration Dependent Luminescence and Energy Transfer Properties of Samarium Doped LLSZFB Glasses
Recently, great importance has been devoted to borate glass systems doped with rare-earth ions because of their unique peculiar properties in the field of photonics for optical applications. The purpose of the present study is to investigate the effect of concentration of Sm3+ ions on the luminescence properties of lead fluoroborate glasses through the energy transfer mechanism. Samarium doped lead fluoroborate glasses with chemical composition 20PbF2 .10Li2O .5SrO .5ZnO. (60-x) B2O3. xSm2O3 (where x = 0.1, 0.5, 1.0, 1.5 and 2.0 mol %) were prepared by means of melt quenching method. The concentration dependent luminescence properties were investigated in detail from the optical absorption, photoluminescence and decay analysis. Judd-Ofelt (J-O) theory was applied to analyze the optical absorption spectra. The experimental oscillator strengths of absorption bands have been used to determine the J-O parameters. Using the J-O parameters Ωλ (λ = 2, 4 and 6) and luminescence data several radiative parameters were obtained. From the luminescence spectra, it was noticed that luminescence quenching starts at higher concentrations of Sm3+ ions (x ≥ 0.5 mol %). The decay curves of 4G5/2 → 6H7/2 transition exhibit a single exponential at lower dopant concentrations (x= 0.1 and 0.5 mol %) and non-exponential at higher concentrations (x ≥ 1 mol %). The concentration quenching was attributed to the energy transfer through the cross-relaxation between Sm3+ ions. The non-exponential curves were well fitted to Inokuti-Hirayama model for S = 6, indicating that the energy transfer between Sm3+ - Sm3+ ions is of dipole-dipole type. The calculated color coordinates of the as-prepared glasses fall within the reddish-orange region of the CIE diagram. All the experimental results indicate that the 0.5 mol% Sm3+ ions doped LLSZFB glass can be a possible choice for solid state lighting and display applications.
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