DOI: 10.1021/acs.langmuir.6c04330 ISSN: 0743-7463

Designing Z-Scheme Type-II ZnSe/GeH van der Waals Heterostructure with High Solar-to-Hydrogen Efficiency for Photocatalytic Water Splitting

Chuong V. Nguyen, Thoi T. K. Ngan, Pham Thiet Truong, Nguyen V. Hieu, Le M. Duc, Nguyen T. Hung, Cuong Q. Nguyen

Abstract

In this work, the structural, electronic, optical, transport, and photocatalytic properties of a ZnSe/GeH heterostructure are systematically investigated using first-principles calculations. The ZnSe/GeH heterostructure exhibits a type-II direct band alignment and a suitable band gap for overall photocatalytic water splitting. Driven by interfacial charge redistribution and the built-in electric field, the heterostructure forms an efficient direct Z-scheme charge-transfer pathway that preserves the strong redox capabilities of photogenerated electrons and holes. The ZnSe/GeH heterostructure also exhibits a high intrinsic carrier mobility of 2330.09 cm2 V–1 s–1, facilitating efficient charge transport. In addition, it demonstrates strong optical absorption in the visible and near-ultraviolet regions, reaching up to 6 × 105 cm–1, which benefits light harvesting and photocatalytic applications. Moreover, the band-edge positions simultaneously straddle the hydrogen and oxygen evolution reaction potentials over a broad pH range, yielding a theoretical solar-to-hydrogen (STH) efficiency of up to 32.22%. Furthermore, the electronic properties can be effectively tuned by external biaxial and uniaxial strains. These findings highlight the ZnSe/GeH heterostructure as a promising candidate for high-efficiency solar-driven photocatalysis.