Cargando…

Large Spin Hall Conductivity and Excellent Hydrogen Evolution Reaction Activity in Unconventional PtTe(1.75) Monolayer

Two-dimensional (2D) materials have gained lots of attention due to the potential applications. In this work, we propose that based on first-principles calculations, the (2 × 2) patterned PtTe(2) monolayer with kagome lattice formed by the well-ordered Te vacancy (PtTe(1.75)) hosts large and tunable...

Descripción completa

Detalles Bibliográficos
Autores principales: Shao, Dexi, Deng, Junze, Sheng, Haohao, Zhang, Ruihan, Weng, Hongming, Fang, Zhong, Chen, Xing-Qiu, Sun, Yan, Wang, Zhijun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: AAAS 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10013811/
https://www.ncbi.nlm.nih.gov/pubmed/36930816
http://dx.doi.org/10.34133/research.0042
_version_ 1784906857423306752
author Shao, Dexi
Deng, Junze
Sheng, Haohao
Zhang, Ruihan
Weng, Hongming
Fang, Zhong
Chen, Xing-Qiu
Sun, Yan
Wang, Zhijun
author_facet Shao, Dexi
Deng, Junze
Sheng, Haohao
Zhang, Ruihan
Weng, Hongming
Fang, Zhong
Chen, Xing-Qiu
Sun, Yan
Wang, Zhijun
author_sort Shao, Dexi
collection PubMed
description Two-dimensional (2D) materials have gained lots of attention due to the potential applications. In this work, we propose that based on first-principles calculations, the (2 × 2) patterned PtTe(2) monolayer with kagome lattice formed by the well-ordered Te vacancy (PtTe(1.75)) hosts large and tunable spin Hall conductivity (SHC) and excellent hydrogen evolution reaction (HER) activity. The unconventional nature relies on the A1 @ 1b band representation of the highest valence band without spin–orbit coupling (SOC). The large SHC comes from the Rashba SOC in the noncentrosymmetric structure induced by the Te vacancy. Even though it has a metallic SOC band structure, the ℤ(2) invariant is well defined because of the existence of the direct bandgap and is computed to be nontrivial. The calculated SHC is as large as 1.25 × 10(3) [Formula: see text] (Ω cm)(−1) at the Fermi level (E(F)). By tuning the chemical potential from E(F) − 0.3 to E(F) + 0.3 eV, it varies rapidly and monotonically from −1.2 × 10(3) to 3.1 [Formula: see text]. In addition, we also find that the Te vacancy in the patterned monolayer can induce excellent HER activity. Our results not only offer a new idea to search 2D materials with large SHC, i.e., by introducing inversion–symmetry breaking vacancies in large SOC systems, but also provide a feasible system with tunable SHC (by applying gate voltage) and excellent HER activity.
format Online
Article
Text
id pubmed-10013811
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher AAAS
record_format MEDLINE/PubMed
spelling pubmed-100138112023-03-15 Large Spin Hall Conductivity and Excellent Hydrogen Evolution Reaction Activity in Unconventional PtTe(1.75) Monolayer Shao, Dexi Deng, Junze Sheng, Haohao Zhang, Ruihan Weng, Hongming Fang, Zhong Chen, Xing-Qiu Sun, Yan Wang, Zhijun Research (Wash D C) Research Article Two-dimensional (2D) materials have gained lots of attention due to the potential applications. In this work, we propose that based on first-principles calculations, the (2 × 2) patterned PtTe(2) monolayer with kagome lattice formed by the well-ordered Te vacancy (PtTe(1.75)) hosts large and tunable spin Hall conductivity (SHC) and excellent hydrogen evolution reaction (HER) activity. The unconventional nature relies on the A1 @ 1b band representation of the highest valence band without spin–orbit coupling (SOC). The large SHC comes from the Rashba SOC in the noncentrosymmetric structure induced by the Te vacancy. Even though it has a metallic SOC band structure, the ℤ(2) invariant is well defined because of the existence of the direct bandgap and is computed to be nontrivial. The calculated SHC is as large as 1.25 × 10(3) [Formula: see text] (Ω cm)(−1) at the Fermi level (E(F)). By tuning the chemical potential from E(F) − 0.3 to E(F) + 0.3 eV, it varies rapidly and monotonically from −1.2 × 10(3) to 3.1 [Formula: see text]. In addition, we also find that the Te vacancy in the patterned monolayer can induce excellent HER activity. Our results not only offer a new idea to search 2D materials with large SHC, i.e., by introducing inversion–symmetry breaking vacancies in large SOC systems, but also provide a feasible system with tunable SHC (by applying gate voltage) and excellent HER activity. AAAS 2023-02-24 2023 /pmc/articles/PMC10013811/ /pubmed/36930816 http://dx.doi.org/10.34133/research.0042 Text en Copyright © 2023 Dexi Shao et al. https://creativecommons.org/licenses/by/4.0/Exclusive licensee Science and Technology Review Publishing House. No claim to original U.S. Government Works. Distributed under a Creative Commons Attribution License 4.0 (CC BY 4.0) (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Shao, Dexi
Deng, Junze
Sheng, Haohao
Zhang, Ruihan
Weng, Hongming
Fang, Zhong
Chen, Xing-Qiu
Sun, Yan
Wang, Zhijun
Large Spin Hall Conductivity and Excellent Hydrogen Evolution Reaction Activity in Unconventional PtTe(1.75) Monolayer
title Large Spin Hall Conductivity and Excellent Hydrogen Evolution Reaction Activity in Unconventional PtTe(1.75) Monolayer
title_full Large Spin Hall Conductivity and Excellent Hydrogen Evolution Reaction Activity in Unconventional PtTe(1.75) Monolayer
title_fullStr Large Spin Hall Conductivity and Excellent Hydrogen Evolution Reaction Activity in Unconventional PtTe(1.75) Monolayer
title_full_unstemmed Large Spin Hall Conductivity and Excellent Hydrogen Evolution Reaction Activity in Unconventional PtTe(1.75) Monolayer
title_short Large Spin Hall Conductivity and Excellent Hydrogen Evolution Reaction Activity in Unconventional PtTe(1.75) Monolayer
title_sort large spin hall conductivity and excellent hydrogen evolution reaction activity in unconventional ptte(1.75) monolayer
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10013811/
https://www.ncbi.nlm.nih.gov/pubmed/36930816
http://dx.doi.org/10.34133/research.0042
work_keys_str_mv AT shaodexi largespinhallconductivityandexcellenthydrogenevolutionreactionactivityinunconventionalptte175monolayer
AT dengjunze largespinhallconductivityandexcellenthydrogenevolutionreactionactivityinunconventionalptte175monolayer
AT shenghaohao largespinhallconductivityandexcellenthydrogenevolutionreactionactivityinunconventionalptte175monolayer
AT zhangruihan largespinhallconductivityandexcellenthydrogenevolutionreactionactivityinunconventionalptte175monolayer
AT wenghongming largespinhallconductivityandexcellenthydrogenevolutionreactionactivityinunconventionalptte175monolayer
AT fangzhong largespinhallconductivityandexcellenthydrogenevolutionreactionactivityinunconventionalptte175monolayer
AT chenxingqiu largespinhallconductivityandexcellenthydrogenevolutionreactionactivityinunconventionalptte175monolayer
AT sunyan largespinhallconductivityandexcellenthydrogenevolutionreactionactivityinunconventionalptte175monolayer
AT wangzhijun largespinhallconductivityandexcellenthydrogenevolutionreactionactivityinunconventionalptte175monolayer