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首页> 外文期刊>Physica status solidi, B. Basic research >Engel-Vosko generalized gradient approximation within DFT investigations of optoelectronic and thermoelectric properties of copper thioantimonates(III) and thioarsenate(III) for solar-energy conversion
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Engel-Vosko generalized gradient approximation within DFT investigations of optoelectronic and thermoelectric properties of copper thioantimonates(III) and thioarsenate(III) for solar-energy conversion

机译:在DFT研究中,用于太阳能转换的硫代锑酸铜(III)和硫代砷酸盐(III)的光电和热电性质的Engel-Vosko广义梯度近似

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摘要

The electronic structure and optical properties of Rb2Cu2Sb2S5, Cs2Cu2Sb2S5, and Rb8Cu6As8S19 were investigated from first principles based on Engel-Vosko generalized gradient approximation (EV-GGA). The calculated band structures and density of states confirm that these compounds have an indirect bandgap. The bands near the Fermi level were mainly contributed from Cu-3d states along with a small participation of S-3p states. The partial density of states shows that Cs and Rb elements are bonded ionically to sulfur, whereas Cu, Sb, As, and S element show covalent bonds with each other. From the electronic structure and using EV-GGA, the frequency-dependent optical parameters such as the real and imaginary parts of the dielectric functions, energy loss function, and reflectivity were calculated. These optical parameters prove that these compounds are potentially interesting for the field of optoelectronic and optical devices. The temperature-dependent thermoelectric properties such as the electrical conductivity, Seebeck coefficient, thermal conductivity, and power factor were calculated based on combination of DFT output and Boltzmann transport theory. (C) 2015 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim
机译:Rb2Cu2Sb2S5,Cs2Cu2Sb2S5和Rb8Cu6As8S19的电子结构和光学性质是根据​​基于恩格尔-沃斯科广义梯度近似(EV-GGA)的第一原理进行研究的。计算出的能带结构和状态密度证实了这些化合物具有间接能带隙。费米能级附近的谱带主要来自Cu-3d态,而少量的S-3p态也有贡献。状态的部分密度表明,Cs和Rb元素离子键合于硫,而Cu,Sb,As和S元素彼此共价键。根据电子结构并使用EV-GGA,计算出随频率变化的光学参数,例如介电函数的实部和虚部,能量损失函数和反射率。这些光学参数证明,这些化合物对于光电和光学器件领域可能是令人感兴趣的。基于DFT输出和玻尔兹曼输运理论,计算了随温度变化的热电特性,如电导率,塞贝克系数,热导率和功率因数。 (C)2015 WILEY-VCH Verlag GmbH&Co.KGaA,Weinheim

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