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Regulating kinetics and thermodynamics of electrochemical nitrogen reduction with metal single-atom catalysts in a pressurized electrolyser

Using renewable electricity to synthesize ammonia from nitrogen paves a sustainable route to making value-added chemicals but yet requires further advances in electrocatalyst development and device integration. By engineering both electrocatalyst and electrolyzer to simultaneously regulate chemical...

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Autores principales: Zou, Haiyuan, Rong, Weifeng, Wei, Shuting, Ji, Yongfei, Duan, Lele
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7703585/
https://www.ncbi.nlm.nih.gov/pubmed/33172992
http://dx.doi.org/10.1073/pnas.2015108117
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author Zou, Haiyuan
Rong, Weifeng
Wei, Shuting
Ji, Yongfei
Duan, Lele
author_facet Zou, Haiyuan
Rong, Weifeng
Wei, Shuting
Ji, Yongfei
Duan, Lele
author_sort Zou, Haiyuan
collection PubMed
description Using renewable electricity to synthesize ammonia from nitrogen paves a sustainable route to making value-added chemicals but yet requires further advances in electrocatalyst development and device integration. By engineering both electrocatalyst and electrolyzer to simultaneously regulate chemical kinetics and thermodynamic driving forces of the electrocatalytic nitrogen reduction reaction (ENRR), we report herein stereoconfinement-induced densely populated metal single atoms (Rh, Ru, Co) on graphdiyne (GDY) matrix (formulated as M SA/GDY) and realized a boosted ENRR activity in a pressurized reaction system. Remarkably, under the pressurized environment, the hydrogen evolution reaction of M SA/GDY was effectively suppressed and the desired ENRR activity was strongly amplificated. As a result, the pressurized ENRR activity of Rh SA/GDY at 55 atm exhibited a record-high NH(3) formation rate of 74.15 μg h(−1)⋅cm(−2), a Faraday efficiency of 20.36%, and a NH(3) partial current of 0.35 mA cm(−2) at −0.20 V versus reversible hydrogen electrode, which, respectively, displayed 7.3-, 4.9-, and 9.2-fold enhancements compared with those obtained under ambient conditions. Furthermore, a time-independent ammonia yield rate using purified (15)N(2) confirmed the concrete ammonia electroproduction. Theoretical calculations reveal that the driving force for the formation of end-on N(2)* on Rh SA/GDY increased by 9.62 kJ/mol under the pressurized conditions, facilitating the ENRR process. We envisage that the cooperative regulations of catalysts and electrochemical devices open up the possibilities for industrially viable electrochemical ammonia production.
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spelling pubmed-77035852020-12-10 Regulating kinetics and thermodynamics of electrochemical nitrogen reduction with metal single-atom catalysts in a pressurized electrolyser Zou, Haiyuan Rong, Weifeng Wei, Shuting Ji, Yongfei Duan, Lele Proc Natl Acad Sci U S A Physical Sciences Using renewable electricity to synthesize ammonia from nitrogen paves a sustainable route to making value-added chemicals but yet requires further advances in electrocatalyst development and device integration. By engineering both electrocatalyst and electrolyzer to simultaneously regulate chemical kinetics and thermodynamic driving forces of the electrocatalytic nitrogen reduction reaction (ENRR), we report herein stereoconfinement-induced densely populated metal single atoms (Rh, Ru, Co) on graphdiyne (GDY) matrix (formulated as M SA/GDY) and realized a boosted ENRR activity in a pressurized reaction system. Remarkably, under the pressurized environment, the hydrogen evolution reaction of M SA/GDY was effectively suppressed and the desired ENRR activity was strongly amplificated. As a result, the pressurized ENRR activity of Rh SA/GDY at 55 atm exhibited a record-high NH(3) formation rate of 74.15 μg h(−1)⋅cm(−2), a Faraday efficiency of 20.36%, and a NH(3) partial current of 0.35 mA cm(−2) at −0.20 V versus reversible hydrogen electrode, which, respectively, displayed 7.3-, 4.9-, and 9.2-fold enhancements compared with those obtained under ambient conditions. Furthermore, a time-independent ammonia yield rate using purified (15)N(2) confirmed the concrete ammonia electroproduction. Theoretical calculations reveal that the driving force for the formation of end-on N(2)* on Rh SA/GDY increased by 9.62 kJ/mol under the pressurized conditions, facilitating the ENRR process. We envisage that the cooperative regulations of catalysts and electrochemical devices open up the possibilities for industrially viable electrochemical ammonia production. National Academy of Sciences 2020-11-24 2020-11-10 /pmc/articles/PMC7703585/ /pubmed/33172992 http://dx.doi.org/10.1073/pnas.2015108117 Text en Copyright © 2020 the Author(s). Published by PNAS. http://creativecommons.org/licenses/by/4.0/ https://creativecommons.org/licenses/by/4.0/This open access article is distributed under Creative Commons Attribution License 4.0 (CC BY) (http://creativecommons.org/licenses/by/4.0/) .
spellingShingle Physical Sciences
Zou, Haiyuan
Rong, Weifeng
Wei, Shuting
Ji, Yongfei
Duan, Lele
Regulating kinetics and thermodynamics of electrochemical nitrogen reduction with metal single-atom catalysts in a pressurized electrolyser
title Regulating kinetics and thermodynamics of electrochemical nitrogen reduction with metal single-atom catalysts in a pressurized electrolyser
title_full Regulating kinetics and thermodynamics of electrochemical nitrogen reduction with metal single-atom catalysts in a pressurized electrolyser
title_fullStr Regulating kinetics and thermodynamics of electrochemical nitrogen reduction with metal single-atom catalysts in a pressurized electrolyser
title_full_unstemmed Regulating kinetics and thermodynamics of electrochemical nitrogen reduction with metal single-atom catalysts in a pressurized electrolyser
title_short Regulating kinetics and thermodynamics of electrochemical nitrogen reduction with metal single-atom catalysts in a pressurized electrolyser
title_sort regulating kinetics and thermodynamics of electrochemical nitrogen reduction with metal single-atom catalysts in a pressurized electrolyser
topic Physical Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7703585/
https://www.ncbi.nlm.nih.gov/pubmed/33172992
http://dx.doi.org/10.1073/pnas.2015108117
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