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用于光催化水分解的二维极性材料的第一性原理计算筛选

First-Principles Computational Screening of Two-Dimensional Polar Materials for Photocatalytic Water Splitting.

作者信息

Gao Yunzhi, Zhang Qian, Hu Wei, Yang Jinlong

机构信息

Hefei National Research Center for Physical Sciences at the Microscale, and Hefei National Laboratory, University of Science and Technology of China, Hefei, Anhui 230026, China.

Key Laboratory of Precision and Intelligent Chemistry, and Department of Chemical Physics, University of Science and Technology of China, Hefei, Anhui 230026, China.

出版信息

ACS Nano. 2024 Jul 23;18(29):19381-19390. doi: 10.1021/acsnano.4c06544. Epub 2024 Jul 12.

Abstract

The band gap constraint of the photocatalyst for overall water splitting limits the utilization of solar energy. A strategy to broaden the range of light absorption is employing a two-dimensional (2D) polar material as photocatalyst, benefiting from the deflection of the energy level due to their intrinsic internal electric field. Here, by using first-principles computational screening, we search for 2D polar semiconductors for photocatalytic water splitting from both ground- and excited-state perspectives. Applying a unique electronic structure model of polar materials, there are 13 photocatalyst candidates for the hydrogen evolution reaction (HER) and 8 candidates for the oxygen evolution reaction (OER) without barrier energies from the perspective of the ground-state free energy variation calculation. In particular, CuAsClS and CuAsBrS can catalyze HER and OER simultaneously, becoming promising photocatalysts for overall water splitting. Furthermore, by combining ground-state band structure calculations with excited-state charge distribution and transfer calculated by linear-response time-dependent density functional theory (LR-TDDFT) and time-dependent ab initio nonadiabatic molecular dynamics (NAMD), respectively, the rationality of the 2D polar material model has been manifested. The intrinsic built-in electric field promotes the separation of charge carriers while suppressing their recombination. Therefore, our computational work provides a high-throughput method to design high-performance photocatalysts for water splitting.

摘要

用于整体水分解的光催化剂的带隙限制了太阳能的利用。拓宽光吸收范围的一种策略是采用二维(2D)极性材料作为光催化剂,这得益于其固有内电场导致的能级偏移。在此,通过使用第一性原理计算筛选,我们从基态和激发态的角度寻找用于光催化水分解的二维极性半导体。应用极性材料独特的电子结构模型,从基态自由能变化计算的角度来看,有13种光催化剂候选物可用于析氢反应(HER),8种可用于析氧反应(OER)且无势垒能量。特别地,CuAsClS和CuAsBrS可以同时催化HER和OER,成为用于整体水分解的有前景的光催化剂。此外,通过分别将基态能带结构计算与通过线性响应含时密度泛函理论(LR-TDDFT)计算的激发态电荷分布和转移以及含时从头算非绝热分子动力学(NAMD)相结合,二维极性材料模型的合理性得到了体现。固有内建电场促进了电荷载流子的分离,同时抑制了它们的复合。因此,我们的计算工作提供了一种设计用于水分解的高性能光催化剂的高通量方法。

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