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Metallic Co Nanoarray Catalyzes Selective NH(3) Production from Electrochemical Nitrate Reduction at Current Densities Exceeding 2 A cm(−2)

Electrochemical nitrate reduction (NITRR) offers a promising alternative toward nitrogen recycling and ammonia production under ambient conditions, for which highly active and selective electrocatalyst is desired. In this study, metallic cobalt nanoarrays as facilely prepared from the electrochemica...

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Autores principales: Deng, Xiaohui, Yang, Yongpeng, Wang, Lei, Fu, Xian‐Zhu, Luo, Jing‐Li
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8025016/
https://www.ncbi.nlm.nih.gov/pubmed/33854903
http://dx.doi.org/10.1002/advs.202004523
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author Deng, Xiaohui
Yang, Yongpeng
Wang, Lei
Fu, Xian‐Zhu
Luo, Jing‐Li
author_facet Deng, Xiaohui
Yang, Yongpeng
Wang, Lei
Fu, Xian‐Zhu
Luo, Jing‐Li
author_sort Deng, Xiaohui
collection PubMed
description Electrochemical nitrate reduction (NITRR) offers a promising alternative toward nitrogen recycling and ammonia production under ambient conditions, for which highly active and selective electrocatalyst is desired. In this study, metallic cobalt nanoarrays as facilely prepared from the electrochemical reduction of Co(OH)(2) nanoarrays (NAs) are demonstrated to exhibit unprecedented NH(3) producing capability from catalyzing NITRR. Benefitting from the high intrinsic activity of Co(0), intimate contact between active species and conductive substrate and the nanostructure which exposes large number of active sites, the Co‐NAs electrode exhibits current density of −2.2 A cm(−2) and NH(3) production rate of 10.4 mmol h(−1) cm(−2) at −0.24 V versus RHE under alkaline condition and significantly surpasses reported counterparts. Moreover, the close‐to‐unity (≥96%) Faradaic efficiency (FE) toward NH(3) is achieved over wide application range (potential, NO(3) (−) concentration and pH). Density function theory calculation reveals the optimized adsorption energy of NITRR intermediates on Co surface over Co(OH)(2). Furthermore, it is proposed that despite the sluggish kinetics of Volmer step (H(2)O → *H + *OH) which provides protons in conventional hydrogenation mechanism, the proton‐supplying water dissociation process on Co surface is drastically facilitated following a concerted water dissociation–hydrogenation pathway.
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spelling pubmed-80250162021-04-13 Metallic Co Nanoarray Catalyzes Selective NH(3) Production from Electrochemical Nitrate Reduction at Current Densities Exceeding 2 A cm(−2) Deng, Xiaohui Yang, Yongpeng Wang, Lei Fu, Xian‐Zhu Luo, Jing‐Li Adv Sci (Weinh) Research Articles Electrochemical nitrate reduction (NITRR) offers a promising alternative toward nitrogen recycling and ammonia production under ambient conditions, for which highly active and selective electrocatalyst is desired. In this study, metallic cobalt nanoarrays as facilely prepared from the electrochemical reduction of Co(OH)(2) nanoarrays (NAs) are demonstrated to exhibit unprecedented NH(3) producing capability from catalyzing NITRR. Benefitting from the high intrinsic activity of Co(0), intimate contact between active species and conductive substrate and the nanostructure which exposes large number of active sites, the Co‐NAs electrode exhibits current density of −2.2 A cm(−2) and NH(3) production rate of 10.4 mmol h(−1) cm(−2) at −0.24 V versus RHE under alkaline condition and significantly surpasses reported counterparts. Moreover, the close‐to‐unity (≥96%) Faradaic efficiency (FE) toward NH(3) is achieved over wide application range (potential, NO(3) (−) concentration and pH). Density function theory calculation reveals the optimized adsorption energy of NITRR intermediates on Co surface over Co(OH)(2). Furthermore, it is proposed that despite the sluggish kinetics of Volmer step (H(2)O → *H + *OH) which provides protons in conventional hydrogenation mechanism, the proton‐supplying water dissociation process on Co surface is drastically facilitated following a concerted water dissociation–hydrogenation pathway. John Wiley and Sons Inc. 2021-02-01 /pmc/articles/PMC8025016/ /pubmed/33854903 http://dx.doi.org/10.1002/advs.202004523 Text en © 2021 The Authors. Advanced Science published by Wiley‐VCH GmbH This is an open access article under the terms of the http://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
Deng, Xiaohui
Yang, Yongpeng
Wang, Lei
Fu, Xian‐Zhu
Luo, Jing‐Li
Metallic Co Nanoarray Catalyzes Selective NH(3) Production from Electrochemical Nitrate Reduction at Current Densities Exceeding 2 A cm(−2)
title Metallic Co Nanoarray Catalyzes Selective NH(3) Production from Electrochemical Nitrate Reduction at Current Densities Exceeding 2 A cm(−2)
title_full Metallic Co Nanoarray Catalyzes Selective NH(3) Production from Electrochemical Nitrate Reduction at Current Densities Exceeding 2 A cm(−2)
title_fullStr Metallic Co Nanoarray Catalyzes Selective NH(3) Production from Electrochemical Nitrate Reduction at Current Densities Exceeding 2 A cm(−2)
title_full_unstemmed Metallic Co Nanoarray Catalyzes Selective NH(3) Production from Electrochemical Nitrate Reduction at Current Densities Exceeding 2 A cm(−2)
title_short Metallic Co Nanoarray Catalyzes Selective NH(3) Production from Electrochemical Nitrate Reduction at Current Densities Exceeding 2 A cm(−2)
title_sort metallic co nanoarray catalyzes selective nh(3) production from electrochemical nitrate reduction at current densities exceeding 2 a cm(−2)
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8025016/
https://www.ncbi.nlm.nih.gov/pubmed/33854903
http://dx.doi.org/10.1002/advs.202004523
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