EXAFS studies of novel impulsive hardening in the Be–Zn–Se semiconductor alloys

J. Mazher, Shabina Khan, Pankaja Singh
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Abstract

Beryllium doping has been used to harden the inherently soft zinc-selenides semiconductor mixed alloys. Stoichiometric semiconductor ternary alloys of BexZn1-xSe have been synthesized by the Bridgeman technique. Extended X-ray absorption fine structure (EXAFS) spectroscopy — in a state-of-art synchrotron-based method — is performed by varying the dopant Be concentration of Be from 6% to 55% in the zinc–selenide host semiconductor. EXAFS analyses is carried out to study the next neighbor and next nearest neighbor atomic positions, nature of the substitutional doping, extent of bond length homogeneity, presence of involuntary contrast among the path distances, and the cross over from soft to hard character of the ternary on increasing Be concentration. Our results indicate the presence of an impulsive nature of hardening in the ternary with a disparity at the lower and the higher doping levels. The observation of impulsive hardening of the substitutional dopants in the semiconductor lattice is explained by the help of self-accommodative attributes of the host lattice.
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Be-Zn-Se半导体合金新型脉冲硬化的EXAFS研究
铍掺杂已被用于硬化本就柔软的锌-硒化物半导体混合合金。采用Bridgeman技术合成了BexZn1-xSe的化学计量半导体三元合金。扩展x射线吸收精细结构(EXAFS)光谱-以最先进的同步加速器为基础的方法-通过改变硒化锌主体半导体中Be的掺杂浓度从6%到55%来执行。利用EXAFS分析研究了邻原子和近邻原子的位置、取代掺杂的性质、键长均匀性的程度、路径距离之间的非随意对比以及随着Be浓度的增加三元化合物从软到硬的交叉特性。我们的结果表明,在较低和较高的掺杂水平下,三元体系中存在脉冲硬化性质。利用主晶格的自调节特性解释了取代掺杂剂在半导体晶格中的脉冲硬化现象。
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