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使用DFT-1/2方法对金属卤化物钙钛矿进行准确高效的带隙预测:兼具GW精度与DFT成本。

Accurate and efficient band gap predictions of metal halide perovskites using the DFT-1/2 method: GW accuracy with DFT expense.

作者信息

Tao Shu Xia, Cao Xi, Bobbert Peter A

机构信息

Center for Computational Energy Research, Department of Applied Physics, Eindhoven University of Technology, P.O. Box 513, 5600MB, Eindhoven, The Netherlands.

出版信息

Sci Rep. 2017 Oct 30;7(1):14386. doi: 10.1038/s41598-017-14435-4.

Abstract

The outstanding optoelectronics and photovoltaic properties of metal halide perovskites, including high carrier motilities, low carrier recombination rates, and the tunable spectral absorption range are attributed to the unique electronic properties of these materials. While DFT provides reliable structures and stabilities of perovskites, it performs poorly in electronic structure prediction. The relativistic GW approximation has been demonstrated to be able to capture electronic structure accurately, but at an extremely high computational cost. Here we report efficient and accurate band gap calculations of halide metal perovskites by using the approximate quasiparticle DFT-1/2 method. Using AMX (A = CHNH, CHNHCH, Cs; M = Pb, Sn, X = I, Br, Cl) as demonstration, the influence of the crystal structure (cubic, tetragonal or orthorhombic), variation of ions (different A, M and X) and relativistic effects on the electronic structure are systematically studied and compared with experimental results. Our results show that the DFT-1/2 method yields accurate band gaps with the precision of the GW method with no more computational cost than standard DFT. This opens the possibility of accurate electronic structure prediction of sophisticated halide perovskite structures and new materials design for lead-free materials.

摘要

金属卤化物钙钛矿具有出色的光电和光伏特性,包括高载流子迁移率、低载流子复合率以及可调节的光谱吸收范围,这些特性归因于这些材料独特的电子性质。虽然密度泛函理论(DFT)能提供可靠的钙钛矿结构和稳定性,但在电子结构预测方面表现不佳。相对论性GW近似已被证明能够准确捕捉电子结构,但计算成本极高。在此,我们报告了使用近似准粒子DFT-1/2方法对卤化物金属钙钛矿进行高效且准确的带隙计算。以AMX(A = CHNH、CHNHCH、Cs;M = Pb、Sn,X = I、Br、Cl)为例,系统研究了晶体结构(立方、四方或正交)、离子变化(不同的A、M和X)以及相对论效应对电子结构的影响,并与实验结果进行了比较。我们的结果表明,DFT-1/2方法能产生与GW方法精度相当的准确带隙,且计算成本不高于标准DFT。这为精确预测复杂卤化物钙钛矿结构的电子结构以及设计无铅材料的新材料开辟了可能性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e025/5662598/1e76559e2c4e/41598_2017_14435_Fig1_HTML.jpg

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