Silicon diphosphide (SiP2) and silicon diarsenide (SiAs2): Novel stable 2D semiconductors with high carrier mobilities, promising for water splitting photocatalysts
Fazel Shojaei, Bohayra Mortazavi, Xiaoying Zhuang, Maryam Azizi

TL;DR
This study introduces novel 2D silicon diphosphide and silicon diarsenide nanosheets with high stability, suitable band gaps, and excellent charge mobility, making them promising materials for efficient water splitting photocatalysts.
Contribution
The paper reports the first theoretical prediction of stable SiP2 and SiAs2 nanosheets with unique electronic properties for photocatalytic water splitting.
Findings
Good mechanical, dynamical, and thermal stability of the nanosheets.
Suitable band gaps and strong visible light absorption.
High and directional charge carrier mobilities.
Abstract
Two dimensional (2D) semiconducting light absorbers, have recently considered as promising components to improve the efficiency in the photocatalytic hydrogen production via water splitting. In this work, by employing density functional theory computations, we introduced novel SiX2 (X = P, As) nanosheets in tetragonal (penta-) and orthorhombic (rec-) phases, as promising light absorber semiconductors for overall water splitting. The predicted nanomembranes exhibit good mechanical, dynamical and thermal stabilities. They also show small cleavage energies in the range of 0.31 J/m2 to 0.39 J/m2, comparable to that of the graphene and thus suggesting the feasibility of their experimental exfoliation. Notably, predicted monolayers are semiconductors with indirect band gaps of 2.65 eV for penta-SiP2, 2.35 eV for penta-SiAs2, 1.89 eV for rec-SiAs2, and a direct band gap of 2.21 eV for…
Peer Reviews
No public reviews on file for this paper yet. If you reviewed it on a platform where reviews are public (OpenReview, ICLR, NeurIPS, ICML), you can paste yours below so the community can read it here.
Videos
No videos yet. Explain this paper in a talk, walkthrough, or lecture? Add one.
