Guo Shaoying, Cui Zhou, Zou Yanhui, Sa Baisheng
School of Pharmacy, Fujian Health College, Fuzhou, Fujian 350101, P. R. China.
Fujian Provincial Key Laboratory of Pollution Control & Resource Reuse, Fujian Normal University, Fuzhou 350003, P. R. China.
Phys Chem Chem Phys. 2024 Feb 7;26(6):5368-5376. doi: 10.1039/d3cp05819k.
Designing Z-scheme van der Waals (vdW) heterostructured photocatalysts is a promising strategy for developing highly efficient overall water splitting. Herein, by employing density functional theory calculations, we systematically investigated the stability, electronic structures, photocatalytic and optical properties of AlSeTe, GaSe, and InS monolayers and their corresponding vdW heterostructures. Interestingly, electronic structures show that all vdW heterostructures have direct band gaps, which is conducive to the transition of electrons from the valence band to the conduction band. Notably, AlTeSe/GaSe and AlTeSe/InS vdW heterostructures possess large overpotentials for Z-scheme photocatalytic water splitting, as proved by the results of band edge positions and band structure bending. Moreover, these vdW heterostructures exhibit good optical absorption in ultraviolet and visible light regions. We believe that our findings will open a new avenue for the modulation and development of AlTeSe/GaSe and AlTeSe/InS vdW heterostructures for photocatalytic water splitting.
设计Z型范德华(vdW)异质结构光催化剂是开发高效全解水的一种很有前景的策略。在此,通过采用密度泛函理论计算,我们系统地研究了AlSeTe、GaSe和InS单层及其相应的vdW异质结构的稳定性、电子结构、光催化和光学性质。有趣的是,电子结构表明所有vdW异质结构都具有直接带隙,这有利于电子从价带跃迁到导带。值得注意的是,能带边缘位置和能带结构弯曲的结果证明,AlTeSe/GaSe和AlTeSe/InS vdW异质结构在Z型光催化水分解方面具有较大的过电位。此外,这些vdW异质结构在紫外和可见光区域表现出良好的光吸收。我们相信,我们的发现将为调制和开发用于光催化水分解的AlTeSe/GaSe和AlTeSe/InS vdW异质结构开辟一条新途径。