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2D TiVCT(x) layered nanosheets grown on nickel foam as highly efficient electrocatalysts for the hydrogen evolution reaction

Exploring highly efficient and durable catalysts for the hydrogen evolution reaction (HER) is crucial for the hydrogen economy and environmental protection issues. Numerous studies have now found that transition metal carbide MXenes are ideal candidates as catalysts for the hydrogen evolution reacti...

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Autores principales: Wen, Yi, Yang, Junsheng, Zou, Haoran, Fan, Yiquan, Li, Jie, Kuang, Yijian, Liu, Wenkang, Zhang, Kaisong, Xiong, Lieqiang
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/PMC9386690/
https://www.ncbi.nlm.nih.gov/pubmed/36090412
http://dx.doi.org/10.1039/d2ra03791b
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author Wen, Yi
Yang, Junsheng
Zou, Haoran
Fan, Yiquan
Li, Jie
Kuang, Yijian
Liu, Wenkang
Zhang, Kaisong
Xiong, Lieqiang
author_facet Wen, Yi
Yang, Junsheng
Zou, Haoran
Fan, Yiquan
Li, Jie
Kuang, Yijian
Liu, Wenkang
Zhang, Kaisong
Xiong, Lieqiang
author_sort Wen, Yi
collection PubMed
description Exploring highly efficient and durable catalysts for the hydrogen evolution reaction (HER) is crucial for the hydrogen economy and environmental protection issues. Numerous studies have now found that transition metal carbide MXenes are ideal candidates as catalysts for the hydrogen evolution reaction. However, MXenes are inclined to easily undergo lamellar structure agglomeration and stacking, which impedes their further applications. Besides, most of the extant research has focused on single transition metal carbides, and the investigation of double transition metal carbide MXenes is rather rare. In this research work, a three-dimensional (3D) TiVCT(x)-based conductive electrode was constructed by depositing 2D TiVCT(x) nanosheets on 3D network structured nickel foam (NF) to synthesize a hybrid electrode material (abbreviated as TiVCT(x)@NF). TiVCT(x)@NF exhibits efficient electrochemical properties with a low overpotential of 151 mV at 10 mA cm(−2) and a small Tafel slope of 116 mV dec(−1). Benefitting from the open layer structure and strong interfacial coupling effect, compared to the pristine structure, the resulting TiVCT(x)@NF has greatly increased active sites for the hydrogen evolution reaction (HER) and encounters less resistance for charge transfer. In addition, TiVCT(x)@NF exhibits better stability in long-term acidic electrolytes. This work provides a tactic to prepare three-dimensional network electrode materials and broadens the application of single transition metal carbide MXenes as water splitting electrodes in the HER, which is beneficial to the application of noble metal-free electrocatalysts.
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spelling pubmed-93866902022-09-08 2D TiVCT(x) layered nanosheets grown on nickel foam as highly efficient electrocatalysts for the hydrogen evolution reaction Wen, Yi Yang, Junsheng Zou, Haoran Fan, Yiquan Li, Jie Kuang, Yijian Liu, Wenkang Zhang, Kaisong Xiong, Lieqiang RSC Adv Chemistry Exploring highly efficient and durable catalysts for the hydrogen evolution reaction (HER) is crucial for the hydrogen economy and environmental protection issues. Numerous studies have now found that transition metal carbide MXenes are ideal candidates as catalysts for the hydrogen evolution reaction. However, MXenes are inclined to easily undergo lamellar structure agglomeration and stacking, which impedes their further applications. Besides, most of the extant research has focused on single transition metal carbides, and the investigation of double transition metal carbide MXenes is rather rare. In this research work, a three-dimensional (3D) TiVCT(x)-based conductive electrode was constructed by depositing 2D TiVCT(x) nanosheets on 3D network structured nickel foam (NF) to synthesize a hybrid electrode material (abbreviated as TiVCT(x)@NF). TiVCT(x)@NF exhibits efficient electrochemical properties with a low overpotential of 151 mV at 10 mA cm(−2) and a small Tafel slope of 116 mV dec(−1). Benefitting from the open layer structure and strong interfacial coupling effect, compared to the pristine structure, the resulting TiVCT(x)@NF has greatly increased active sites for the hydrogen evolution reaction (HER) and encounters less resistance for charge transfer. In addition, TiVCT(x)@NF exhibits better stability in long-term acidic electrolytes. This work provides a tactic to prepare three-dimensional network electrode materials and broadens the application of single transition metal carbide MXenes as water splitting electrodes in the HER, which is beneficial to the application of noble metal-free electrocatalysts. The Royal Society of Chemistry 2022-08-18 /pmc/articles/PMC9386690/ /pubmed/36090412 http://dx.doi.org/10.1039/d2ra03791b Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Wen, Yi
Yang, Junsheng
Zou, Haoran
Fan, Yiquan
Li, Jie
Kuang, Yijian
Liu, Wenkang
Zhang, Kaisong
Xiong, Lieqiang
2D TiVCT(x) layered nanosheets grown on nickel foam as highly efficient electrocatalysts for the hydrogen evolution reaction
title 2D TiVCT(x) layered nanosheets grown on nickel foam as highly efficient electrocatalysts for the hydrogen evolution reaction
title_full 2D TiVCT(x) layered nanosheets grown on nickel foam as highly efficient electrocatalysts for the hydrogen evolution reaction
title_fullStr 2D TiVCT(x) layered nanosheets grown on nickel foam as highly efficient electrocatalysts for the hydrogen evolution reaction
title_full_unstemmed 2D TiVCT(x) layered nanosheets grown on nickel foam as highly efficient electrocatalysts for the hydrogen evolution reaction
title_short 2D TiVCT(x) layered nanosheets grown on nickel foam as highly efficient electrocatalysts for the hydrogen evolution reaction
title_sort 2d tivct(x) layered nanosheets grown on nickel foam as highly efficient electrocatalysts for the hydrogen evolution reaction
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9386690/
https://www.ncbi.nlm.nih.gov/pubmed/36090412
http://dx.doi.org/10.1039/d2ra03791b
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