Yingying Jia, Yan Zhang, Dou-Dou Cheng, Hui-Ru Zhu, Yu Feng, Li Duan
In recent years, direct Z-scheme van der Waals heterojunctions based on two-dimensional materials have been at the forefront of solar water decomposition for hydrogen production. This paper utilizes first-principles calculations to thoroughly examine the HfS 2 /InP heterojunction, with a focus on its structural stability, electronic behavior, photocatalytic efficiency, and optical properties. The results show that the HfS 2 /InP heterojunction has a type II energy band arrangement and a direct Z-scheme charge transfer path. A built-in electric field pointing from InP side to HfS 2 side is formed at the interface. A high solar-to-hydrogen (STH) conversion efficiency η STH of 13.8 % is obtained under AM1.5G solar illumination, with favorable band edge positions enabling water splitting in a wide pH range (0–11). Furthermore, the photocatalytic performance of the material exhibits remarkable stability over a strain range of −6 % to2 %. The results indicate that the HfS 2 /InP heterojunction is a promising candidate for photocatalytic water splitting due to its high photocatalytic efficiency and strain stability. This research provides valuable theoretical insights and potential applications for advancing photocatalyst design and green energy technologies.