Strain-Induced SiP-PtS2 Heterostructure with Fast Carrier Transport for Boosted Photocatalytic Hydrogen Conversion

Earth-abundant silicon-, phosphorus-, and sulfur-related compounds are crucial for optoelectronic application. Specifically, experimentally proven monolayer SiP has attracted a great deal of attention in above listed field owing to its unique properties but is plagued with challenges such as photoco...

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Published in:Journal of Physical Chemistry C
Main Author: Chang Y.H.R.; Yao K.; Yeoh K.H.; Yoshiya M.; Jiang J.; Tuh M.H.; Khong H.Y.; Lim T.L.
Format: Article
Language:English
Published: American Chemical Society 2023
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85164407442&doi=10.1021%2facs.jpcc.3c02431&partnerID=40&md5=c5a648729d4a2479a0f470768af6caf8
id 2-s2.0-85164407442
spelling 2-s2.0-85164407442
Chang Y.H.R.; Yao K.; Yeoh K.H.; Yoshiya M.; Jiang J.; Tuh M.H.; Khong H.Y.; Lim T.L.
Strain-Induced SiP-PtS2 Heterostructure with Fast Carrier Transport for Boosted Photocatalytic Hydrogen Conversion
2023
Journal of Physical Chemistry C
127
26
10.1021/acs.jpcc.3c02431
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85164407442&doi=10.1021%2facs.jpcc.3c02431&partnerID=40&md5=c5a648729d4a2479a0f470768af6caf8
Earth-abundant silicon-, phosphorus-, and sulfur-related compounds are crucial for optoelectronic application. Specifically, experimentally proven monolayer SiP has attracted a great deal of attention in above listed field owing to its unique properties but is plagued with challenges such as photocorrosion and poor charge separation. Moreover, theoretical understanding on the relationship of the interface and photocatalytic activity in SiP-based chemicals is not well understood. In this work, hybrid functional first-principles calculations were used to explore the photocatalytic hydrogen evolution activity of SiP-PtS2 heterostructure. Further examination of phonon, ab initio molecular dynamics (AIMD), and elastic property simulations confirms its dynamical stability. Its computed band gap of 1.59 eV is suitable for maximizing solar energy conversion efficiency, with noticeable strong absorption coefficients of 105 cm-1 order across visible-ultraviolet domains, asymmetric decent carrier mobility (∼103 cm2 V-1 s-1), and low exciton binding energy (0.56 eV). Differences in charge density and Bader and Mulliken population analyses reveal that charge flows from the SiP to the PtS2 layers, performing the dual functions of segregating photoinduced charge carriers and increasing their lifetimes. The relative band alignment of the monolayers promotes a spatial separation of the charges. An important feature of this heterostructure is that the band edges cross the water redox potential at pH of 0 upon −2% of compressive biaxial straining, with ΔG for hydrogen evolution reaction (HER) barrier lower than −0.2 eV. The quadratic relationship between biaxial strain and atomic energy indicates that both the system and strains are elastic. Redox thermodynamic analysis predicts facile hydrogen production on the heterostructure. In particular, the calculated maximum solar power conversion efficiency (PCE) and solar-to-hydrogen (STH) efficiency can reach 22.9 and 23.8%, respectively. © 2023 American Chemical Society
American Chemical Society
19327447
English
Article

author Chang Y.H.R.; Yao K.; Yeoh K.H.; Yoshiya M.; Jiang J.; Tuh M.H.; Khong H.Y.; Lim T.L.
spellingShingle Chang Y.H.R.; Yao K.; Yeoh K.H.; Yoshiya M.; Jiang J.; Tuh M.H.; Khong H.Y.; Lim T.L.
Strain-Induced SiP-PtS2 Heterostructure with Fast Carrier Transport for Boosted Photocatalytic Hydrogen Conversion
author_facet Chang Y.H.R.; Yao K.; Yeoh K.H.; Yoshiya M.; Jiang J.; Tuh M.H.; Khong H.Y.; Lim T.L.
author_sort Chang Y.H.R.; Yao K.; Yeoh K.H.; Yoshiya M.; Jiang J.; Tuh M.H.; Khong H.Y.; Lim T.L.
title Strain-Induced SiP-PtS2 Heterostructure with Fast Carrier Transport for Boosted Photocatalytic Hydrogen Conversion
title_short Strain-Induced SiP-PtS2 Heterostructure with Fast Carrier Transport for Boosted Photocatalytic Hydrogen Conversion
title_full Strain-Induced SiP-PtS2 Heterostructure with Fast Carrier Transport for Boosted Photocatalytic Hydrogen Conversion
title_fullStr Strain-Induced SiP-PtS2 Heterostructure with Fast Carrier Transport for Boosted Photocatalytic Hydrogen Conversion
title_full_unstemmed Strain-Induced SiP-PtS2 Heterostructure with Fast Carrier Transport for Boosted Photocatalytic Hydrogen Conversion
title_sort Strain-Induced SiP-PtS2 Heterostructure with Fast Carrier Transport for Boosted Photocatalytic Hydrogen Conversion
publishDate 2023
container_title Journal of Physical Chemistry C
container_volume 127
container_issue 26
doi_str_mv 10.1021/acs.jpcc.3c02431
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85164407442&doi=10.1021%2facs.jpcc.3c02431&partnerID=40&md5=c5a648729d4a2479a0f470768af6caf8
description Earth-abundant silicon-, phosphorus-, and sulfur-related compounds are crucial for optoelectronic application. Specifically, experimentally proven monolayer SiP has attracted a great deal of attention in above listed field owing to its unique properties but is plagued with challenges such as photocorrosion and poor charge separation. Moreover, theoretical understanding on the relationship of the interface and photocatalytic activity in SiP-based chemicals is not well understood. In this work, hybrid functional first-principles calculations were used to explore the photocatalytic hydrogen evolution activity of SiP-PtS2 heterostructure. Further examination of phonon, ab initio molecular dynamics (AIMD), and elastic property simulations confirms its dynamical stability. Its computed band gap of 1.59 eV is suitable for maximizing solar energy conversion efficiency, with noticeable strong absorption coefficients of 105 cm-1 order across visible-ultraviolet domains, asymmetric decent carrier mobility (∼103 cm2 V-1 s-1), and low exciton binding energy (0.56 eV). Differences in charge density and Bader and Mulliken population analyses reveal that charge flows from the SiP to the PtS2 layers, performing the dual functions of segregating photoinduced charge carriers and increasing their lifetimes. The relative band alignment of the monolayers promotes a spatial separation of the charges. An important feature of this heterostructure is that the band edges cross the water redox potential at pH of 0 upon −2% of compressive biaxial straining, with ΔG for hydrogen evolution reaction (HER) barrier lower than −0.2 eV. The quadratic relationship between biaxial strain and atomic energy indicates that both the system and strains are elastic. Redox thermodynamic analysis predicts facile hydrogen production on the heterostructure. In particular, the calculated maximum solar power conversion efficiency (PCE) and solar-to-hydrogen (STH) efficiency can reach 22.9 and 23.8%, respectively. © 2023 American Chemical Society
publisher American Chemical Society
issn 19327447
language English
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