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首页> 外文期刊>Physica, B. Condensed Matter >Tuning of electronic band gaps and optoelectronic properties of binary strontium chalcogenides by means of doping of magnesium atom(s)- a first principles based theoretical initiative with mBJ, B3LYP and WC-GGA functionals
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Tuning of electronic band gaps and optoelectronic properties of binary strontium chalcogenides by means of doping of magnesium atom(s)- a first principles based theoretical initiative with mBJ, B3LYP and WC-GGA functionals

机译:通过掺杂镁原子掺杂的二元锶硫族化合物的电子带间隙和光电性能 - 一种基于MBJ,B3LYP和WC-GGA功能的基于理论促进的第一个原理

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AbstractFirst principle based theoretical initiative is taken to tune the optoelectronic properties of binary strontium chalcogenide semiconductors by doping magnesium atom(s) into their rock-salt unit cells at specific concentrationsx?=?0.0, 0.25, 0.50, 0.75 and 1.0 and such tuning is established by studying structural, electronic and optical properties of designed binary compounds and ternary alloys employing WC-GGA, B3LYP and mBJ exchange-correlation functionals. Band structure of each compound is constructed and respective band gaps under all the potential schemes are measured. The band gap bowing and its microscopic origin are calculated using quadratic fit and Zunger's approach, respectively. The atomic and orbital origins of electronic states in the band structure of any compound are explored from its density of states. The nature of chemical bonds between the constituent atoms in each compound is explored from the valence electron density contour plots. Optical properties of any specimen are explored from the computed spectra of its dielectric function, refractive index, extinction coefficient, normal incidence reflectivity, optical conductivity optical absorption and energy loss function. Several calculated results are compared with available experimental and earlier theoretical data.
机译:<![CDATA [ 抽象 首先基于原则的理论措施,采用掺杂镁原子调节二元锶黄钙化物半导体的光电性质(s )在特定浓度 x ?= 0,0.25,0.50,0.75和1.0,通过研究设计的二进制的结构,电子和光学性质来建立这种调谐使用WC-GGA,B3LYP和MBJ交换相关功能的化合物和三元合金。每个化合物的带结构是在测量所有潜在方案下的各个带间隙的构造。带隙弯曲及其微观原点分别使用二次配合和Zunger的方法计算。从其各州的密度探索了任何化合物的带结构中电子国家的原子和轨道起源。从价电子密度等高图探索了每个化合物中的构成原子之间的化学键的性质。从其介电函数,折射率,消光系数,正常入射反射,光导光吸收和能量损失功能的计算光谱来探索任何样本的光学性质。将几种计算结果与可用的实验和早期的理论数据进行了比较。

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