Sheng Wei, Xu Ying, Liu Mingwei, Nie Guozheng, Wang Junnian, Gong Shijing
School of Physics and Electronic Science, Hunan University of Science and Technology, Xiangtan 411201, China.
Collaborative Innovation Center of Extreme Optics, Shanxi University, Taiyuan, Shanxi 030006, China and Department of Electronic Engineering, Key Laboratory of Polar Materials and Devices (MOE), School of Physics and Electronic Science, East China Normal University, Shanghai 200241, China.
Phys Chem Chem Phys. 2020 Sep 30;22(37):21436-21444. doi: 10.1039/d0cp03831h.
Photocatalytic water splitting for hydrogen production has attracted increasing research attention in recent years, and great efforts have been made in order to find the ideal photocatalyst. In this work, we proposed a two-dimensional material-based van der Waals (vdW) heterostructure constructed by vertically stacked indium selenide (InSe) and silicane (SiH) and studied the feasibility of using it as a possible photocatalyst for water splitting by using first-principles methods. The results show that the InSe/SiH is a direct band gap semiconductor with appropriate gap value and band edge position for photocatalysts in water splitting. Importantly, this heterostructure presents type-II band alignment at the equilibrium configuration, which supports the effective separation of photoexcited electrons and holes. A built-in electric field set up within the interface of the heterostructure will further hinder the electron-hole recombination and thus improve the photocatalytic efficiency. In addition, compared with separated InSe and SiH monolayers, the heterostructure exhibits enhanced light absorption capabilities in ultraviolet and visible light regions. These findings indicate that the InSe/SiH vdW heterostructure is a promising candidate for photocatalysts for solar water splitting.
近年来,光催化水分解制氢已引起越来越多的研究关注,并且人们为寻找理想的光催化剂付出了巨大努力。在这项工作中,我们提出了一种基于二维材料的范德华(vdW)异质结构,该结构由垂直堆叠的硒化铟(InSe)和硅烷(SiH)构建而成,并使用第一性原理方法研究了将其用作水分解光催化剂的可行性。结果表明,InSe/SiH是一种直接带隙半导体,具有适合水分解光催化剂的带隙值和带边位置。重要的是,这种异质结构在平衡构型下呈现II型能带排列,这有利于光激发电子和空穴的有效分离。在异质结构界面内建立的内建电场将进一步阻碍电子 - 空穴复合,从而提高光催化效率。此外,与分离的InSe和SiH单层相比,该异质结构在紫外和可见光区域表现出增强的光吸收能力。这些发现表明,InSe/SiH vdW异质结构是太阳能水分解光催化剂的一个有前途的候选材料。