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Exploration of the structural, optoelectronic and vibrational behavior of Sb2S3 through the first principles approach for phenomenal applications in solar cells

机译:通过第一性原理方法探索Sb2S3在太阳能电池中的结构、光电和振动行为

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摘要

Abstract In order to study any material the first principles approach has been considered an appropriate forum and deemed the best remedy to ensure the validity of the achievements/results obtained either theoretically or experimentally. We are, therefore, motivated to use this approach to explore the structural, optoelectronic and vibrational properties of Sb2S3 while utilizing the plane-wave pseudopotential technique and conjugate gradient method employed through the CASTEP simulation code. The crystal structure of Sb2S3 is optimized in orthorhombic phase having space group Pnma with lattice parameters a = 11.31 Å, b = 3.84 Å and c = 11.23 Å. It is noticed that magnitude of these lattice parameters approximately replicate the formerly reported theoretical as well as experimental results. The energy band gap is found to be 1.012 eV, which is utter evidence that the studied compound belongs to semiconductor category of the materials. The optical parameters unveil that Sb2S3 is capable to absorb wide range of radiations from the ultraviolet (UV) portion of the spectrum. The dynamical analysis through density functional perturbation theory (DFPT) shows that there is no soft mode which further ensures dynamical stability of Sb2S3. The optical analysis of the studied compound are enough to declare it a potential material for applications in solar cells.
机译:摘要 为了研究任何材料,第一性原理方法被认为是一个适当的论坛,并被认为是确保理论或实验所获得的成就/结果的有效性的最佳补救措施。因此,我们利用这种方法来探索Sb2S3的结构、光电和振动特性,同时利用平面波赝势技术和CASTEP仿真代码采用的共轭梯度方法。Sb2S3 的晶体结构在空间群为 Pnma 的斜方相中得到了优化,晶格参数为 a = 11.31 Å、b = 3.84 Å 和 c = 11.23 Å。值得注意的是,这些晶格参数的大小大致复制了先前报道的理论和实验结果。发现能带隙为 1.012 eV,这完全证明了所研究化合物属于半导体类别的材料。光学参数显示,Sb2S3 能够吸收光谱中紫外线 (UV) 部分的宽范围辐射。通过密度泛函微扰理论(DFPT)进行的动力学分析表明,Sb2S3不存在软模式,进一步保证了Sb2S3的动力学稳定性。对所研究化合物的光学分析足以宣布它是一种应用于太阳能电池的潜在材料。

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