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Synergism of carbon quantum dots and Au nanoparticles with Bi(2)MoO(6) for activity enhanced photocatalytic oxidative degradation of phenol

Localized surface plasmon resonance (LSPR) offers an opportunity to enhance the efficiency of photocatalysis. However, the photocatalysts's plasmonic enhancement is still limited, as most metals/semiconductors depend on LSPR contribution of isolated metal nanoparticles. In the present work, car...

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Autores principales: Zhao, Qiang, Zhang, Zhuangzhuang, Yan, Ting, Guo, Li, Yang, Chunming, Gao, Ge, Wang, Yu, Fu, Feng, Xu, Bin, Wang, Danjun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9038096/
https://www.ncbi.nlm.nih.gov/pubmed/35478547
http://dx.doi.org/10.1039/d1ra05164d
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author Zhao, Qiang
Zhang, Zhuangzhuang
Yan, Ting
Guo, Li
Yang, Chunming
Gao, Ge
Wang, Yu
Fu, Feng
Xu, Bin
Wang, Danjun
author_facet Zhao, Qiang
Zhang, Zhuangzhuang
Yan, Ting
Guo, Li
Yang, Chunming
Gao, Ge
Wang, Yu
Fu, Feng
Xu, Bin
Wang, Danjun
author_sort Zhao, Qiang
collection PubMed
description Localized surface plasmon resonance (LSPR) offers an opportunity to enhance the efficiency of photocatalysis. However, the photocatalysts's plasmonic enhancement is still limited, as most metals/semiconductors depend on LSPR contribution of isolated metal nanoparticles. In the present work, carbon quantum dots (CQDs) and Au nanoparticles (NPs) were simultaneously assembled on the surface of a three-dimensional (3D) spherical Bi(2)MoO(6) (BMO) nanostructure with surface oxygen vacancies (SOVs). The collective excitation of CQDs and Au NPs demonstrated an effective strategy to improve the utilization of up-conversion emission and plasmonic energy. The contribution of CQDs and Au NPs assembled on the surface of BMO (7 wt% CQDs/Au/BMO) realized a photocatalytic phenol degradation enhancement (apparent rate constants, k(app)/min(−1)) of 56.5, 9.5 and 3.9, and 2.2-fold increase compared to BMO, BMO-SOVs, Au/BMO and CQDs/BMO, respectively. The as-fabricated 7 wt% CQDs/Au/BMO exhibited the highest mineralization rate for phenol degradation with 72.4% TOC removal rate in 120 min. The excellent photocatalytic performance of CQDs/Au/BMO was attributed to the synergistic effect of CQDs, Au NPs and SOVs. The CQD up-conversion emission synergetically boosts Au NPs' LSPR significantly promoting the separation and migration of photogenerated electron (e(−))/hole (h(+)) pairs, which could improve the oxygen molecule activation process and thereby their ability to generate reactive oxygen species (ROS). The present work is a step forward to understand and construct similar photocatalysts using an entirely reasonable hypothesis of activity enhancement mechanism according to the active species capture experiments and band structure analysis.
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spelling pubmed-90380962022-04-26 Synergism of carbon quantum dots and Au nanoparticles with Bi(2)MoO(6) for activity enhanced photocatalytic oxidative degradation of phenol Zhao, Qiang Zhang, Zhuangzhuang Yan, Ting Guo, Li Yang, Chunming Gao, Ge Wang, Yu Fu, Feng Xu, Bin Wang, Danjun RSC Adv Chemistry Localized surface plasmon resonance (LSPR) offers an opportunity to enhance the efficiency of photocatalysis. However, the photocatalysts's plasmonic enhancement is still limited, as most metals/semiconductors depend on LSPR contribution of isolated metal nanoparticles. In the present work, carbon quantum dots (CQDs) and Au nanoparticles (NPs) were simultaneously assembled on the surface of a three-dimensional (3D) spherical Bi(2)MoO(6) (BMO) nanostructure with surface oxygen vacancies (SOVs). The collective excitation of CQDs and Au NPs demonstrated an effective strategy to improve the utilization of up-conversion emission and plasmonic energy. The contribution of CQDs and Au NPs assembled on the surface of BMO (7 wt% CQDs/Au/BMO) realized a photocatalytic phenol degradation enhancement (apparent rate constants, k(app)/min(−1)) of 56.5, 9.5 and 3.9, and 2.2-fold increase compared to BMO, BMO-SOVs, Au/BMO and CQDs/BMO, respectively. The as-fabricated 7 wt% CQDs/Au/BMO exhibited the highest mineralization rate for phenol degradation with 72.4% TOC removal rate in 120 min. The excellent photocatalytic performance of CQDs/Au/BMO was attributed to the synergistic effect of CQDs, Au NPs and SOVs. The CQD up-conversion emission synergetically boosts Au NPs' LSPR significantly promoting the separation and migration of photogenerated electron (e(−))/hole (h(+)) pairs, which could improve the oxygen molecule activation process and thereby their ability to generate reactive oxygen species (ROS). The present work is a step forward to understand and construct similar photocatalysts using an entirely reasonable hypothesis of activity enhancement mechanism according to the active species capture experiments and band structure analysis. The Royal Society of Chemistry 2021-08-25 /pmc/articles/PMC9038096/ /pubmed/35478547 http://dx.doi.org/10.1039/d1ra05164d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Zhao, Qiang
Zhang, Zhuangzhuang
Yan, Ting
Guo, Li
Yang, Chunming
Gao, Ge
Wang, Yu
Fu, Feng
Xu, Bin
Wang, Danjun
Synergism of carbon quantum dots and Au nanoparticles with Bi(2)MoO(6) for activity enhanced photocatalytic oxidative degradation of phenol
title Synergism of carbon quantum dots and Au nanoparticles with Bi(2)MoO(6) for activity enhanced photocatalytic oxidative degradation of phenol
title_full Synergism of carbon quantum dots and Au nanoparticles with Bi(2)MoO(6) for activity enhanced photocatalytic oxidative degradation of phenol
title_fullStr Synergism of carbon quantum dots and Au nanoparticles with Bi(2)MoO(6) for activity enhanced photocatalytic oxidative degradation of phenol
title_full_unstemmed Synergism of carbon quantum dots and Au nanoparticles with Bi(2)MoO(6) for activity enhanced photocatalytic oxidative degradation of phenol
title_short Synergism of carbon quantum dots and Au nanoparticles with Bi(2)MoO(6) for activity enhanced photocatalytic oxidative degradation of phenol
title_sort synergism of carbon quantum dots and au nanoparticles with bi(2)moo(6) for activity enhanced photocatalytic oxidative degradation of phenol
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9038096/
https://www.ncbi.nlm.nih.gov/pubmed/35478547
http://dx.doi.org/10.1039/d1ra05164d
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