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Two dimensional twin T-graphene: monolayer for visible-light photocatalytic water splitting and bulk for anode material of magnesium batteries

Two-dimensional (2D) carbon allotropes with all-sp(2)-hybridization have demonstrated great potential in nano-photoelectric devices, but the application of semiconductor photocatalysts for water splitting and anodes in magnesium batteries remains unoptimistic. Motivated by this, we theoretically stu...

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Autores principales: Lin, Jiahe, Chen, Xiaowei, Zhang, Bofeng, Tan, Chunrong, Lin, Qiubao, Wang, Xiulin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9590591/
https://www.ncbi.nlm.nih.gov/pubmed/36337945
http://dx.doi.org/10.1039/d2ra06121j
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author Lin, Jiahe
Chen, Xiaowei
Zhang, Bofeng
Tan, Chunrong
Lin, Qiubao
Wang, Xiulin
author_facet Lin, Jiahe
Chen, Xiaowei
Zhang, Bofeng
Tan, Chunrong
Lin, Qiubao
Wang, Xiulin
author_sort Lin, Jiahe
collection PubMed
description Two-dimensional (2D) carbon allotropes with all-sp(2)-hybridization have demonstrated great potential in nano-photoelectric devices, but the application of semiconductor photocatalysts for water splitting and anodes in magnesium batteries remains unoptimistic. Motivated by this, we theoretically study a highly stable all-sp(2)-hybridized 2D carbon allotrope twin T-graphene (TTG) via first-principles simulations. And through the calculations of the HSE06 functional, we find that TTG has a wide bandgap (2.70 eV) and suitable band edge positions satisfying the criteria of photocatalysts for overall water splitting. Additionally, TTG exhibits excellent photocatalytic properties for overall water splitting reflecting a high STH efficiency (12.34%), strong absorption coefficient in the visible-light region and the carrier mobility being high for electrons but low for holes. By investigating the strain effects, we get that, with biaxial compressive strain, the ability of overall photocatalytic water splitting can be effectively improved including STH up to ∼30%. Moreover, the bulk TTG also exhibits great potential as an anode material of magnesium batteries with a theoretical capacity of 556 mA h g(−1), average voltage of 0.74 V and diffusion energy barrier of ∼0.96 eV. Our results would broaden the application of all-sp(2)-hybridized 2D carbon allotropes in the semiconductor photocatalytic and magnesium batteries field.
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spelling pubmed-95905912022-11-03 Two dimensional twin T-graphene: monolayer for visible-light photocatalytic water splitting and bulk for anode material of magnesium batteries Lin, Jiahe Chen, Xiaowei Zhang, Bofeng Tan, Chunrong Lin, Qiubao Wang, Xiulin RSC Adv Chemistry Two-dimensional (2D) carbon allotropes with all-sp(2)-hybridization have demonstrated great potential in nano-photoelectric devices, but the application of semiconductor photocatalysts for water splitting and anodes in magnesium batteries remains unoptimistic. Motivated by this, we theoretically study a highly stable all-sp(2)-hybridized 2D carbon allotrope twin T-graphene (TTG) via first-principles simulations. And through the calculations of the HSE06 functional, we find that TTG has a wide bandgap (2.70 eV) and suitable band edge positions satisfying the criteria of photocatalysts for overall water splitting. Additionally, TTG exhibits excellent photocatalytic properties for overall water splitting reflecting a high STH efficiency (12.34%), strong absorption coefficient in the visible-light region and the carrier mobility being high for electrons but low for holes. By investigating the strain effects, we get that, with biaxial compressive strain, the ability of overall photocatalytic water splitting can be effectively improved including STH up to ∼30%. Moreover, the bulk TTG also exhibits great potential as an anode material of magnesium batteries with a theoretical capacity of 556 mA h g(−1), average voltage of 0.74 V and diffusion energy barrier of ∼0.96 eV. Our results would broaden the application of all-sp(2)-hybridized 2D carbon allotropes in the semiconductor photocatalytic and magnesium batteries field. The Royal Society of Chemistry 2022-10-24 /pmc/articles/PMC9590591/ /pubmed/36337945 http://dx.doi.org/10.1039/d2ra06121j Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Lin, Jiahe
Chen, Xiaowei
Zhang, Bofeng
Tan, Chunrong
Lin, Qiubao
Wang, Xiulin
Two dimensional twin T-graphene: monolayer for visible-light photocatalytic water splitting and bulk for anode material of magnesium batteries
title Two dimensional twin T-graphene: monolayer for visible-light photocatalytic water splitting and bulk for anode material of magnesium batteries
title_full Two dimensional twin T-graphene: monolayer for visible-light photocatalytic water splitting and bulk for anode material of magnesium batteries
title_fullStr Two dimensional twin T-graphene: monolayer for visible-light photocatalytic water splitting and bulk for anode material of magnesium batteries
title_full_unstemmed Two dimensional twin T-graphene: monolayer for visible-light photocatalytic water splitting and bulk for anode material of magnesium batteries
title_short Two dimensional twin T-graphene: monolayer for visible-light photocatalytic water splitting and bulk for anode material of magnesium batteries
title_sort two dimensional twin t-graphene: monolayer for visible-light photocatalytic water splitting and bulk for anode material of magnesium batteries
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9590591/
https://www.ncbi.nlm.nih.gov/pubmed/36337945
http://dx.doi.org/10.1039/d2ra06121j
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