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Electrochemically dealloyed nanoporous Fe(40)Ni(20)Co(20)P(15)C(5) metallic glass for efficient and stable electrocatalytic hydrogen and oxygen generation

The anion exchange membrane (AEM) in fuel cells requires new, stable, and improved electrocatalysts for large scale commercial production of hydrogen fuel for efficient energy conversion. Fe(40)Ni(20)Co(20)P(15)C(5), a novel metallic glass ribbon, was prepared by arc melting and melt spinning method...

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Autores principales: Aneeshkumar, K. S., Tseng, Jo-chi, Liu, Xiaodi, Tian, Jinsen, Diao, Dongfeng, Shen, Jun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8694965/
https://www.ncbi.nlm.nih.gov/pubmed/35423272
http://dx.doi.org/10.1039/d0ra10418c
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author Aneeshkumar, K. S.
Tseng, Jo-chi
Liu, Xiaodi
Tian, Jinsen
Diao, Dongfeng
Shen, Jun
author_facet Aneeshkumar, K. S.
Tseng, Jo-chi
Liu, Xiaodi
Tian, Jinsen
Diao, Dongfeng
Shen, Jun
author_sort Aneeshkumar, K. S.
collection PubMed
description The anion exchange membrane (AEM) in fuel cells requires new, stable, and improved electrocatalysts for large scale commercial production of hydrogen fuel for efficient energy conversion. Fe(40)Ni(20)Co(20)P(15)C(5), a novel metallic glass ribbon, was prepared by arc melting and melt spinning method. The metallic glass was evaluated as an efficient electrocatalyst in water-splitting reactions, namely hydrogen evolution reaction under acidic and alkaline conditions. In addition, oxygen evolution reaction in alkaline medium was also evaluated. In 0.5 M H(2)SO(4), the metallic glass ribbons, after electrochemical dealloying, needed an overpotential of 128 mV for hydrogen evolution reaction, while in 1 M KOH they needed an overpotential of 236 mV for hydrogen evolution. For the oxygen evolution reaction, the overpotential was 278 mV. The electrochemical dealloying procedure significantly reduced the overpotential, and the overpotential remained constant over 20 hours of test conditions under acidic and alkaline conditions. The improved electrocatalytic activity was explained based on the metastable nature of metallic glass and the synergistic effect of metal hydroxo species and phosphates. Based on the excellent properties and free-standing nature of these metallic glass ribbons in electrolyte medium, we propose the current metallic glass for commercial, industrial electrocatalytic applications.
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spelling pubmed-86949652022-04-13 Electrochemically dealloyed nanoporous Fe(40)Ni(20)Co(20)P(15)C(5) metallic glass for efficient and stable electrocatalytic hydrogen and oxygen generation Aneeshkumar, K. S. Tseng, Jo-chi Liu, Xiaodi Tian, Jinsen Diao, Dongfeng Shen, Jun RSC Adv Chemistry The anion exchange membrane (AEM) in fuel cells requires new, stable, and improved electrocatalysts for large scale commercial production of hydrogen fuel for efficient energy conversion. Fe(40)Ni(20)Co(20)P(15)C(5), a novel metallic glass ribbon, was prepared by arc melting and melt spinning method. The metallic glass was evaluated as an efficient electrocatalyst in water-splitting reactions, namely hydrogen evolution reaction under acidic and alkaline conditions. In addition, oxygen evolution reaction in alkaline medium was also evaluated. In 0.5 M H(2)SO(4), the metallic glass ribbons, after electrochemical dealloying, needed an overpotential of 128 mV for hydrogen evolution reaction, while in 1 M KOH they needed an overpotential of 236 mV for hydrogen evolution. For the oxygen evolution reaction, the overpotential was 278 mV. The electrochemical dealloying procedure significantly reduced the overpotential, and the overpotential remained constant over 20 hours of test conditions under acidic and alkaline conditions. The improved electrocatalytic activity was explained based on the metastable nature of metallic glass and the synergistic effect of metal hydroxo species and phosphates. Based on the excellent properties and free-standing nature of these metallic glass ribbons in electrolyte medium, we propose the current metallic glass for commercial, industrial electrocatalytic applications. The Royal Society of Chemistry 2021-02-12 /pmc/articles/PMC8694965/ /pubmed/35423272 http://dx.doi.org/10.1039/d0ra10418c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Aneeshkumar, K. S.
Tseng, Jo-chi
Liu, Xiaodi
Tian, Jinsen
Diao, Dongfeng
Shen, Jun
Electrochemically dealloyed nanoporous Fe(40)Ni(20)Co(20)P(15)C(5) metallic glass for efficient and stable electrocatalytic hydrogen and oxygen generation
title Electrochemically dealloyed nanoporous Fe(40)Ni(20)Co(20)P(15)C(5) metallic glass for efficient and stable electrocatalytic hydrogen and oxygen generation
title_full Electrochemically dealloyed nanoporous Fe(40)Ni(20)Co(20)P(15)C(5) metallic glass for efficient and stable electrocatalytic hydrogen and oxygen generation
title_fullStr Electrochemically dealloyed nanoporous Fe(40)Ni(20)Co(20)P(15)C(5) metallic glass for efficient and stable electrocatalytic hydrogen and oxygen generation
title_full_unstemmed Electrochemically dealloyed nanoporous Fe(40)Ni(20)Co(20)P(15)C(5) metallic glass for efficient and stable electrocatalytic hydrogen and oxygen generation
title_short Electrochemically dealloyed nanoporous Fe(40)Ni(20)Co(20)P(15)C(5) metallic glass for efficient and stable electrocatalytic hydrogen and oxygen generation
title_sort electrochemically dealloyed nanoporous fe(40)ni(20)co(20)p(15)c(5) metallic glass for efficient and stable electrocatalytic hydrogen and oxygen generation
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8694965/
https://www.ncbi.nlm.nih.gov/pubmed/35423272
http://dx.doi.org/10.1039/d0ra10418c
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