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Atomically Interfacial Engineering on Molybdenum Nitride Quantum Dots Decorated N‐doped Graphene for High‐Rate and Stable Alkaline Hydrogen Production

The development of low‐cost, high‐efficiency, and stable electrocatalysts for hydrogen evolution reaction (HER) under alkaline conditions is a key challenge in water electrolysis. Here, an interfacial engineering strategy that is capable of simultaneously regulating nanoscale structure, electronic s...

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Autores principales: Huang, Yichao, Zhou, Wenbo, Kong, Weichao, Chen, Lulu, Lu, Xiaolong, Cai, Hanqing, Yuan, Yongrui, Zhao, Lianming, Jiang, Yangyang, Li, Haitao, Wang, Limin, Wang, Lin, Wang, Hang, Zhang, Jiangwei, Gu, Jing, Fan, Zhuangjun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9799021/
https://www.ncbi.nlm.nih.gov/pubmed/36285692
http://dx.doi.org/10.1002/advs.202204949
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author Huang, Yichao
Zhou, Wenbo
Kong, Weichao
Chen, Lulu
Lu, Xiaolong
Cai, Hanqing
Yuan, Yongrui
Zhao, Lianming
Jiang, Yangyang
Li, Haitao
Wang, Limin
Wang, Lin
Wang, Hang
Zhang, Jiangwei
Gu, Jing
Fan, Zhuangjun
author_facet Huang, Yichao
Zhou, Wenbo
Kong, Weichao
Chen, Lulu
Lu, Xiaolong
Cai, Hanqing
Yuan, Yongrui
Zhao, Lianming
Jiang, Yangyang
Li, Haitao
Wang, Limin
Wang, Lin
Wang, Hang
Zhang, Jiangwei
Gu, Jing
Fan, Zhuangjun
author_sort Huang, Yichao
collection PubMed
description The development of low‐cost, high‐efficiency, and stable electrocatalysts for hydrogen evolution reaction (HER) under alkaline conditions is a key challenge in water electrolysis. Here, an interfacial engineering strategy that is capable of simultaneously regulating nanoscale structure, electronic structure, and interfacial structure of Mo(2)N quantum dots decorated on conductive N‐doped graphene via codoping single‐atom Al and O (denoted as AlO@Mo(2)N‐NrGO) is reported. The conversion of Anderson polyoxometalates anion cluster ([AlMo(6)O(24)H(6)](3−), denoted as AlMo6) to Mo(2)N quantum dots not only result in the generation of more exposed active sites but also in situ codoping atomically dispersed Al and O, that can fine‐tune the electronic structure of Mo(2)N. It is also identified that the surface reconstruction of Al—OH hydrates in AlO@Mo(2)N quantum dots plays an essential role in enhancing hydrophilicity and lowering the energy barriers for water dissociation and hydrogen desorption, resulting in a remarkable alkaline HER performance, even better than the commercial 20% Pt/C. Moreover, the strong interfacial interaction (Mo—N bonds) between AlO@Mo(2)N and N‐doped graphene can significantly improve electron transfer efficiency and interfacial stability. As a result, outstanding stability over 300 h at a current density higher than 100 mA cm(−2) is achieved, demonstrating great potential for the practical application of this catalyst.
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spelling pubmed-97990212023-01-05 Atomically Interfacial Engineering on Molybdenum Nitride Quantum Dots Decorated N‐doped Graphene for High‐Rate and Stable Alkaline Hydrogen Production Huang, Yichao Zhou, Wenbo Kong, Weichao Chen, Lulu Lu, Xiaolong Cai, Hanqing Yuan, Yongrui Zhao, Lianming Jiang, Yangyang Li, Haitao Wang, Limin Wang, Lin Wang, Hang Zhang, Jiangwei Gu, Jing Fan, Zhuangjun Adv Sci (Weinh) Research Articles The development of low‐cost, high‐efficiency, and stable electrocatalysts for hydrogen evolution reaction (HER) under alkaline conditions is a key challenge in water electrolysis. Here, an interfacial engineering strategy that is capable of simultaneously regulating nanoscale structure, electronic structure, and interfacial structure of Mo(2)N quantum dots decorated on conductive N‐doped graphene via codoping single‐atom Al and O (denoted as AlO@Mo(2)N‐NrGO) is reported. The conversion of Anderson polyoxometalates anion cluster ([AlMo(6)O(24)H(6)](3−), denoted as AlMo6) to Mo(2)N quantum dots not only result in the generation of more exposed active sites but also in situ codoping atomically dispersed Al and O, that can fine‐tune the electronic structure of Mo(2)N. It is also identified that the surface reconstruction of Al—OH hydrates in AlO@Mo(2)N quantum dots plays an essential role in enhancing hydrophilicity and lowering the energy barriers for water dissociation and hydrogen desorption, resulting in a remarkable alkaline HER performance, even better than the commercial 20% Pt/C. Moreover, the strong interfacial interaction (Mo—N bonds) between AlO@Mo(2)N and N‐doped graphene can significantly improve electron transfer efficiency and interfacial stability. As a result, outstanding stability over 300 h at a current density higher than 100 mA cm(−2) is achieved, demonstrating great potential for the practical application of this catalyst. John Wiley and Sons Inc. 2022-10-26 /pmc/articles/PMC9799021/ /pubmed/36285692 http://dx.doi.org/10.1002/advs.202204949 Text en © 2022 The Authors. Advanced Science published by Wiley‐VCH GmbH https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Huang, Yichao
Zhou, Wenbo
Kong, Weichao
Chen, Lulu
Lu, Xiaolong
Cai, Hanqing
Yuan, Yongrui
Zhao, Lianming
Jiang, Yangyang
Li, Haitao
Wang, Limin
Wang, Lin
Wang, Hang
Zhang, Jiangwei
Gu, Jing
Fan, Zhuangjun
Atomically Interfacial Engineering on Molybdenum Nitride Quantum Dots Decorated N‐doped Graphene for High‐Rate and Stable Alkaline Hydrogen Production
title Atomically Interfacial Engineering on Molybdenum Nitride Quantum Dots Decorated N‐doped Graphene for High‐Rate and Stable Alkaline Hydrogen Production
title_full Atomically Interfacial Engineering on Molybdenum Nitride Quantum Dots Decorated N‐doped Graphene for High‐Rate and Stable Alkaline Hydrogen Production
title_fullStr Atomically Interfacial Engineering on Molybdenum Nitride Quantum Dots Decorated N‐doped Graphene for High‐Rate and Stable Alkaline Hydrogen Production
title_full_unstemmed Atomically Interfacial Engineering on Molybdenum Nitride Quantum Dots Decorated N‐doped Graphene for High‐Rate and Stable Alkaline Hydrogen Production
title_short Atomically Interfacial Engineering on Molybdenum Nitride Quantum Dots Decorated N‐doped Graphene for High‐Rate and Stable Alkaline Hydrogen Production
title_sort atomically interfacial engineering on molybdenum nitride quantum dots decorated n‐doped graphene for high‐rate and stable alkaline hydrogen production
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9799021/
https://www.ncbi.nlm.nih.gov/pubmed/36285692
http://dx.doi.org/10.1002/advs.202204949
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