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Crystal facet and Na-doping dual engineering ultrathin BiOCl nanosheets with efficient oxygen activation for enhanced photocatalytic performance

Photocatalytic oxidation (PCO) based on semiconductors offers a sustainable and promising way for environmental remediation. However, the photocatalytic performance currently suffers from weak light-harvesting ability, rapid charge combination and a lack of accessible reactive sites. Ultrathin two-d...

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Autores principales: Chen, Kunyu, Huang, Yiwei, Huang, Meina, Zhu, Yanqiu, Tang, Ming, Bi, Renjie, Zhu, Meiping
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9900602/
https://www.ncbi.nlm.nih.gov/pubmed/36760302
http://dx.doi.org/10.1039/d2ra08003f
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author Chen, Kunyu
Huang, Yiwei
Huang, Meina
Zhu, Yanqiu
Tang, Ming
Bi, Renjie
Zhu, Meiping
author_facet Chen, Kunyu
Huang, Yiwei
Huang, Meina
Zhu, Yanqiu
Tang, Ming
Bi, Renjie
Zhu, Meiping
author_sort Chen, Kunyu
collection PubMed
description Photocatalytic oxidation (PCO) based on semiconductors offers a sustainable and promising way for environmental remediation. However, the photocatalytic performance currently suffers from weak light-harvesting ability, rapid charge combination and a lack of accessible reactive sites. Ultrathin two-dimensional (2D) materials are ideal candidates to overcome these problems and become hotpots in the research fields. Herein, we demonstrate an ultrathin (<4 nm thick) Na-doped BiOCl nanosheets with {001} facets (Na-BOC-001) fabricated via a facile bottom-up approach. Because of the synergistic effect of highly exposed active facets and optimal Na doping on the electronic and crystal structure, the Na-BOC-001 showed an upshifted conduction band (CB) with stronger reduction potential for O(2) activation, more defective surface for enhanced O(2) adsorption, as well as the highest visible-light driven charge separation and transfer ability. Compared with the bulk counterparts (BOC-010 and BOC-001), the largest amount of active species and the best photocatalytic performance for the tetracycline hydrochloride (TC) degradation were achieved for the Na-BOC-001 under visible-light irradiation, even though it had slightly weaker visible-light absorption ability. Moreover, the effect of the Na doping and crystal facet on the possible pathways for TC degradation was investigated. This work offers a feasible and economic strategy for the construction of highly efficient ultrathin 2D materials.
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spelling pubmed-99006022023-02-08 Crystal facet and Na-doping dual engineering ultrathin BiOCl nanosheets with efficient oxygen activation for enhanced photocatalytic performance Chen, Kunyu Huang, Yiwei Huang, Meina Zhu, Yanqiu Tang, Ming Bi, Renjie Zhu, Meiping RSC Adv Chemistry Photocatalytic oxidation (PCO) based on semiconductors offers a sustainable and promising way for environmental remediation. However, the photocatalytic performance currently suffers from weak light-harvesting ability, rapid charge combination and a lack of accessible reactive sites. Ultrathin two-dimensional (2D) materials are ideal candidates to overcome these problems and become hotpots in the research fields. Herein, we demonstrate an ultrathin (<4 nm thick) Na-doped BiOCl nanosheets with {001} facets (Na-BOC-001) fabricated via a facile bottom-up approach. Because of the synergistic effect of highly exposed active facets and optimal Na doping on the electronic and crystal structure, the Na-BOC-001 showed an upshifted conduction band (CB) with stronger reduction potential for O(2) activation, more defective surface for enhanced O(2) adsorption, as well as the highest visible-light driven charge separation and transfer ability. Compared with the bulk counterparts (BOC-010 and BOC-001), the largest amount of active species and the best photocatalytic performance for the tetracycline hydrochloride (TC) degradation were achieved for the Na-BOC-001 under visible-light irradiation, even though it had slightly weaker visible-light absorption ability. Moreover, the effect of the Na doping and crystal facet on the possible pathways for TC degradation was investigated. This work offers a feasible and economic strategy for the construction of highly efficient ultrathin 2D materials. The Royal Society of Chemistry 2023-02-06 /pmc/articles/PMC9900602/ /pubmed/36760302 http://dx.doi.org/10.1039/d2ra08003f Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Chen, Kunyu
Huang, Yiwei
Huang, Meina
Zhu, Yanqiu
Tang, Ming
Bi, Renjie
Zhu, Meiping
Crystal facet and Na-doping dual engineering ultrathin BiOCl nanosheets with efficient oxygen activation for enhanced photocatalytic performance
title Crystal facet and Na-doping dual engineering ultrathin BiOCl nanosheets with efficient oxygen activation for enhanced photocatalytic performance
title_full Crystal facet and Na-doping dual engineering ultrathin BiOCl nanosheets with efficient oxygen activation for enhanced photocatalytic performance
title_fullStr Crystal facet and Na-doping dual engineering ultrathin BiOCl nanosheets with efficient oxygen activation for enhanced photocatalytic performance
title_full_unstemmed Crystal facet and Na-doping dual engineering ultrathin BiOCl nanosheets with efficient oxygen activation for enhanced photocatalytic performance
title_short Crystal facet and Na-doping dual engineering ultrathin BiOCl nanosheets with efficient oxygen activation for enhanced photocatalytic performance
title_sort crystal facet and na-doping dual engineering ultrathin biocl nanosheets with efficient oxygen activation for enhanced photocatalytic performance
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9900602/
https://www.ncbi.nlm.nih.gov/pubmed/36760302
http://dx.doi.org/10.1039/d2ra08003f
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