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Main Authors: Bao, Nguyen Tran Gia, Trang, Ton Nu Quynh, Thoai, Nam, Thang, Phan Bach, Thu, Vu Thi Hanh, Hung, Nguyen Tuan
Format: Preprint
Published: 2024
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Online Access:https://arxiv.org/abs/2411.03396
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author Bao, Nguyen Tran Gia
Trang, Ton Nu Quynh
Thoai, Nam
Thang, Phan Bach
Thu, Vu Thi Hanh
Hung, Nguyen Tuan
author_facet Bao, Nguyen Tran Gia
Trang, Ton Nu Quynh
Thoai, Nam
Thang, Phan Bach
Thu, Vu Thi Hanh
Hung, Nguyen Tuan
contents Direct Z-scheme heterobilayers with enhanced redox potential are viewed as promising for solar-driven water splitting, arising from the synergy between intrinsic dipoles in Janus materials and interfacial electric fields across the layers. This study explores 20 two-dimensional Janus transition-metal dichalcogenide (TMDC) heterobilayers for efficient water splitting. Using density-functional theory (DFT) calculations, we screen them based on band gaps and intrinsic electric fields to identify promising candidates, then further assess carrier mobility and surface chemistry to fully evaluate their overall performance. By examining the alignment of synthetic and internal electric fields, we distinguish between Type-I, Type-II, and Z-scheme configurations, enabling the targeted design of optimal photocatalytic materials. Furthermore, we employ the Fröhlich interaction model to quantify the mobility contributions from the longitudinal optical phonon mode, providing detailed insights into how carrier mobility, influenced by phonon scattering, affects photocatalytic performance. Our findings demonstrate the potential of Janus-based Z-scheme systems to overcome existing limitations in photocatalytic water splitting by optimizing the electronic and structural properties of 2D materials, highlighting a viable pathway for advancing clean energy generation through enhanced photocatalytic processes.
format Preprint
id arxiv_https___arxiv_org_abs_2411_03396
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Rational Design Heterobilayers Photocatalysts for Efficient Water Splitting Based on 2D Transition-Metal Dichalcogenide and Their Janus
Bao, Nguyen Tran Gia
Trang, Ton Nu Quynh
Thoai, Nam
Thang, Phan Bach
Thu, Vu Thi Hanh
Hung, Nguyen Tuan
Materials Science
Direct Z-scheme heterobilayers with enhanced redox potential are viewed as promising for solar-driven water splitting, arising from the synergy between intrinsic dipoles in Janus materials and interfacial electric fields across the layers. This study explores 20 two-dimensional Janus transition-metal dichalcogenide (TMDC) heterobilayers for efficient water splitting. Using density-functional theory (DFT) calculations, we screen them based on band gaps and intrinsic electric fields to identify promising candidates, then further assess carrier mobility and surface chemistry to fully evaluate their overall performance. By examining the alignment of synthetic and internal electric fields, we distinguish between Type-I, Type-II, and Z-scheme configurations, enabling the targeted design of optimal photocatalytic materials. Furthermore, we employ the Fröhlich interaction model to quantify the mobility contributions from the longitudinal optical phonon mode, providing detailed insights into how carrier mobility, influenced by phonon scattering, affects photocatalytic performance. Our findings demonstrate the potential of Janus-based Z-scheme systems to overcome existing limitations in photocatalytic water splitting by optimizing the electronic and structural properties of 2D materials, highlighting a viable pathway for advancing clean energy generation through enhanced photocatalytic processes.
title Rational Design Heterobilayers Photocatalysts for Efficient Water Splitting Based on 2D Transition-Metal Dichalcogenide and Their Janus
topic Materials Science
url https://arxiv.org/abs/2411.03396