论文标题

用于光伏应用的缺陷变体perovskites A2Bx6的计算研究

Computational Study of Defect variant Perovskites A2BX6 for Photovoltaic Applications

论文作者

Faizan, M., Bhamu, K. C., Khan, S. H., Murtaza, G., He, Xin

论文摘要

已经通过基于DFT的第一原理方法进行了对无铅钙钛矿的结构,电子和光学特性的全面研究。对具有A = RB和CS的A2BX6型化合物进行计算; b = sn,pd和pt;和x = Cl,br和I。计算出的结构参数(晶格常数和键长)与实验非常吻合。计算的带隙揭示了所有这些化合物的半导体曲线,通过将卤化物离子从CL到BR和BR更改为BR和BR。但是,对于B点阳离子的变化,频带间隙通过将阳离子从PD通过SN改变阳离子而增加。最可能的化合物RB2PDBR6和CS2PTI6在单连接光电动应用中显示在0.9-1.6 eV的最佳范围内的带隙。还研究了介电常数,光导率和吸收系数的最佳值的光学性能,也已研究至10 eV的光子能量。我们的结果表明,改变卤素离子后(br和br的Cl由i)显着改变。对于RB2PDI6和CS2PTI6,发现最大的介电常数和高光吸收。可以有效地利用独特的光电特性,例如理想的带隙,高介电常数以及A2BX6 perovskites的最佳吸收。

A comprehensive study of the structural, electronic, and optical properties of lead-free perovskites has been carried out by means of first principles method based on DFT. The calculations are performed for the compound of the type A2BX6 with A=Rb, and Cs; B=Sn, Pd, and Pt; and X=Cl, Br, and I. The calculated structural parameters (lattice constants and bond lengths) agree well with the experiments. The computed band gap reveals a semiconducting profile for all these compounds showing a decreasing trend of the band gap energy by changing the halide ions consecutively from Cl to Br and Br to I. However, for variation in the B-site cation, the band gap increases by changing the cation from Pd to Pt via Sn. The most likely compounds, Rb2PdBr6 and Cs2PtI6, exhibit a band gap within the optimal range of 0.9-1.6 eV for single-junction photovoltaic applications. The optical properties in terms of the optimal value of the dielectric constant, optical conductivity, and absorption coefficient are also investigated upto the photon energy of 10 eV. Our results indicate that upon changing the halogen ions (Cl by Br and Br by I) the optical properties altered significantly. Maximum dielectric constants and high optical absorption are found for Rb2PdI6 and Cs2PtI6. The unique optoelectronic properties such as ideal band gap, high dielectric constants, and optimum absorption of A2BX6 perovskites could be efficiently utilized in designing high performance single and multi-junction perovskite solar cells.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源