Rational Design of Two-Dimensional Octuple-Atomic-Layer M2A2Z4 for Photocatalytic Water Splitting
Shikai Chang, Dingyanyan Zhou, Yujin Ji, Mir F. Mousavi, Jian Xi, and Youyong Li

TL;DR
This study systematically designs and screens 2D octuple-atomic-layer materials, identifying promising candidates with suitable electronic properties and stability for photocatalytic water splitting, and demonstrates how surface modifications enhance their catalytic activity.
Contribution
The paper introduces a first-principles screening approach for 2D M2A2Z4 monolayers, identifying new stable photocatalysts with enhanced activity through surface vacancy engineering.
Findings
Eight candidates meet water splitting criteria.
Al2Si2N4 and Al2Ge2N4 show high efficiency and stability.
N vacancies significantly boost catalytic activity.
Abstract
Two-dimensional (2D) materials have emerged as promising candidates as photocatalytic materials due to their large surface areas and tunable electronic properties. In this work, we systematically design and screen a series of octuple-atomic-layer M2A2Z4 monolayers (M = Al, Ga, In; A = Si, Ge, Sn; Z = N, P, As) using first-principles calculations. 108 structures are constructed by intercalation approach, followed by a comprehensive evaluation of their thermodynamic and dynamic stability, band gaps, and band edge alignments to assess their potential for photocatalytic overall water splitting. Eight candidates meet the criteria for overall water splitting, among which Al2Si2N4 and Al2Ge2N4 exhibit suitable band edge positions, pronounced visible-light absorption, high electron mobility and high solar-to-hydrogen (STH) efficiencies for photocatalysis under both acidic and neutral…
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