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Robust Self-Supported SnO(2)-Mn(2)O(3)@CC Electrode for Efficient Electrochemical Degradation of Cationic Blue X-GRRL Dye

Exploration of highly efficient and robust catalyst is pivotal for electrocatalytic degradation of dye wastewater, but it still is a challenge. Here, we develop a three-dimensional self-supported SnO(2)-Mn(2)O(3) hybrid nanosheets grown on carbon cloth (noted by SnO(2)-Mn(2)O(3)@CC) electrode via a...

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Autores principales: Li, Caiyun, Yi, Peng, Sun, Junwei, Wang, Xi-Ao, Liu, Rongzhan, Sun, Jiankun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10180115/
https://www.ncbi.nlm.nih.gov/pubmed/37175367
http://dx.doi.org/10.3390/molecules28093957
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author Li, Caiyun
Yi, Peng
Sun, Junwei
Wang, Xi-Ao
Liu, Rongzhan
Sun, Jiankun
author_facet Li, Caiyun
Yi, Peng
Sun, Junwei
Wang, Xi-Ao
Liu, Rongzhan
Sun, Jiankun
author_sort Li, Caiyun
collection PubMed
description Exploration of highly efficient and robust catalyst is pivotal for electrocatalytic degradation of dye wastewater, but it still is a challenge. Here, we develop a three-dimensional self-supported SnO(2)-Mn(2)O(3) hybrid nanosheets grown on carbon cloth (noted by SnO(2)-Mn(2)O(3)@CC) electrode via a simple hydrothermal method and annealing treatment. Benefitting from the interlaced nanosheets architecture that enlarges the surface area and the synergetic component effect that accelerates the interfacial electronic transfer, SnO(2)-Mn(2)O(3)@CC electrode exhibits a superior electrocatalytic degradation efficiency for cationic blue X-GRRL dye in comparison with the single metal oxide electrode containing SnO(2)@CC and Mn(2)O(3)@CC. The degradation efficiency of cationic blue X-GRRL on SnO(2)-Mn(2)O(3)@CC electrode can reach up to 97.55% within 50 min. Furthermore, self-supported architecture of nanosheets on carbon cloth framework contributes to a robust stability compared with the traditional electrode via the multiple dip/brush coating accompanied by the thermal decomposition method. SnO(2)-Mn(2)O(3)@CC electrode exhibits excellent recyclability, which can still retain a degradation efficiency of 94.12% after six cycles. This work may provide a new pathway for the design and exploration of highly efficient and robust electrooxidation catalysts for dye degradation.
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spelling pubmed-101801152023-05-13 Robust Self-Supported SnO(2)-Mn(2)O(3)@CC Electrode for Efficient Electrochemical Degradation of Cationic Blue X-GRRL Dye Li, Caiyun Yi, Peng Sun, Junwei Wang, Xi-Ao Liu, Rongzhan Sun, Jiankun Molecules Article Exploration of highly efficient and robust catalyst is pivotal for electrocatalytic degradation of dye wastewater, but it still is a challenge. Here, we develop a three-dimensional self-supported SnO(2)-Mn(2)O(3) hybrid nanosheets grown on carbon cloth (noted by SnO(2)-Mn(2)O(3)@CC) electrode via a simple hydrothermal method and annealing treatment. Benefitting from the interlaced nanosheets architecture that enlarges the surface area and the synergetic component effect that accelerates the interfacial electronic transfer, SnO(2)-Mn(2)O(3)@CC electrode exhibits a superior electrocatalytic degradation efficiency for cationic blue X-GRRL dye in comparison with the single metal oxide electrode containing SnO(2)@CC and Mn(2)O(3)@CC. The degradation efficiency of cationic blue X-GRRL on SnO(2)-Mn(2)O(3)@CC electrode can reach up to 97.55% within 50 min. Furthermore, self-supported architecture of nanosheets on carbon cloth framework contributes to a robust stability compared with the traditional electrode via the multiple dip/brush coating accompanied by the thermal decomposition method. SnO(2)-Mn(2)O(3)@CC electrode exhibits excellent recyclability, which can still retain a degradation efficiency of 94.12% after six cycles. This work may provide a new pathway for the design and exploration of highly efficient and robust electrooxidation catalysts for dye degradation. MDPI 2023-05-08 /pmc/articles/PMC10180115/ /pubmed/37175367 http://dx.doi.org/10.3390/molecules28093957 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Li, Caiyun
Yi, Peng
Sun, Junwei
Wang, Xi-Ao
Liu, Rongzhan
Sun, Jiankun
Robust Self-Supported SnO(2)-Mn(2)O(3)@CC Electrode for Efficient Electrochemical Degradation of Cationic Blue X-GRRL Dye
title Robust Self-Supported SnO(2)-Mn(2)O(3)@CC Electrode for Efficient Electrochemical Degradation of Cationic Blue X-GRRL Dye
title_full Robust Self-Supported SnO(2)-Mn(2)O(3)@CC Electrode for Efficient Electrochemical Degradation of Cationic Blue X-GRRL Dye
title_fullStr Robust Self-Supported SnO(2)-Mn(2)O(3)@CC Electrode for Efficient Electrochemical Degradation of Cationic Blue X-GRRL Dye
title_full_unstemmed Robust Self-Supported SnO(2)-Mn(2)O(3)@CC Electrode for Efficient Electrochemical Degradation of Cationic Blue X-GRRL Dye
title_short Robust Self-Supported SnO(2)-Mn(2)O(3)@CC Electrode for Efficient Electrochemical Degradation of Cationic Blue X-GRRL Dye
title_sort robust self-supported sno(2)-mn(2)o(3)@cc electrode for efficient electrochemical degradation of cationic blue x-grrl dye
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10180115/
https://www.ncbi.nlm.nih.gov/pubmed/37175367
http://dx.doi.org/10.3390/molecules28093957
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