Recent Advances and Future Perspectives of Metal-Based Electrocatalysts for Overall Electrochemical Water Splitting

Recently, the growing demand for a renewable and sustainable fuel alternative is contingent on fuel cell technologies. Even though it is regarded as an environmentally sustainable method of generating fuel for immediate concerns, it must be enhanced to make it extraordinarily affordable, and environ...

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Published in:Chemical Record
Main Author: Hayat A.; Sohail M.; Ali H.; Taha T.A.; Qazi H.I.A.; Ur Rahman N.; Ajmal Z.; Kalam A.; Al-Sehemi A.G.; Wageh S.; Amin M.A.; Palamanit A.; Nawawi W.I.; Newair E.F.; Orooji Y.
Format: Review
Language:English
Published: John Wiley and Sons Inc 2023
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85143236332&doi=10.1002%2ftcr.202200149&partnerID=40&md5=01c37ba9c5532f65159399f47b5cf813
id 2-s2.0-85143236332
spelling 2-s2.0-85143236332
Hayat A.; Sohail M.; Ali H.; Taha T.A.; Qazi H.I.A.; Ur Rahman N.; Ajmal Z.; Kalam A.; Al-Sehemi A.G.; Wageh S.; Amin M.A.; Palamanit A.; Nawawi W.I.; Newair E.F.; Orooji Y.
Recent Advances and Future Perspectives of Metal-Based Electrocatalysts for Overall Electrochemical Water Splitting
2023
Chemical Record
23
2
10.1002/tcr.202200149
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85143236332&doi=10.1002%2ftcr.202200149&partnerID=40&md5=01c37ba9c5532f65159399f47b5cf813
Recently, the growing demand for a renewable and sustainable fuel alternative is contingent on fuel cell technologies. Even though it is regarded as an environmentally sustainable method of generating fuel for immediate concerns, it must be enhanced to make it extraordinarily affordable, and environmentally sustainable. Hydrogen (H2) synthesis by electrochemical water splitting (ECWS) is considered one of the foremost potential prospective methods for renewable energy output and H2 society implementation. Existing massive H2 output is mostly reliant on the steaming reformation of carbon fuels that yield CO2 together with H2 and is a finite resource. ECWS is a viable, efficient, and contamination-free method for H2 evolution. Consequently, developing reliable and cost-effective technology for ECWS was a top priority for scientists around the globe. Utilizing renewable technologies to decrease total fuel utilization is crucial for H2 evolution. Capturing and transforming the fuel from the ambient through various renewable solutions for water splitting (WS) could effectively reduce the need for additional electricity. ECWS is among the foremost potential prospective methods for renewable energy output and the achievement of a H2-based economy. For the overall water splitting (OWS), several transition-metal-based polyfunctional metal catalysts for both cathode and anode have been synthesized. Furthermore, the essential to the widespread adoption of such technology is the development of reduced-price, super functional electrocatalysts to substitute those, depending on metals. Many metal-premised electrocatalysts for both the anode and cathode have been designed for the WS process. The attributes of H2 and oxygen (O2) dynamics interactions on the electrodes of water electrolysis cells and the fundamental techniques for evaluating the achievement of electrocatalysts are outlined in this paper. Special emphasis is paid to their fabrication, electrocatalytic performance, durability, and measures for enhancing their efficiency. In addition, prospective ideas on metal-based WS electrocatalysts based on existing problems are presented. It is anticipated that this review will offer a straight direction toward the engineering and construction of novel polyfunctional electrocatalysts encompassing superior efficiency in a suitable WS technique. © 2022 The Chemical Society of Japan & Wiley-VCH GmbH.
John Wiley and Sons Inc
15278999
English
Review

author Hayat A.; Sohail M.; Ali H.; Taha T.A.; Qazi H.I.A.; Ur Rahman N.; Ajmal Z.; Kalam A.; Al-Sehemi A.G.; Wageh S.; Amin M.A.; Palamanit A.; Nawawi W.I.; Newair E.F.; Orooji Y.
spellingShingle Hayat A.; Sohail M.; Ali H.; Taha T.A.; Qazi H.I.A.; Ur Rahman N.; Ajmal Z.; Kalam A.; Al-Sehemi A.G.; Wageh S.; Amin M.A.; Palamanit A.; Nawawi W.I.; Newair E.F.; Orooji Y.
Recent Advances and Future Perspectives of Metal-Based Electrocatalysts for Overall Electrochemical Water Splitting
author_facet Hayat A.; Sohail M.; Ali H.; Taha T.A.; Qazi H.I.A.; Ur Rahman N.; Ajmal Z.; Kalam A.; Al-Sehemi A.G.; Wageh S.; Amin M.A.; Palamanit A.; Nawawi W.I.; Newair E.F.; Orooji Y.
author_sort Hayat A.; Sohail M.; Ali H.; Taha T.A.; Qazi H.I.A.; Ur Rahman N.; Ajmal Z.; Kalam A.; Al-Sehemi A.G.; Wageh S.; Amin M.A.; Palamanit A.; Nawawi W.I.; Newair E.F.; Orooji Y.
title Recent Advances and Future Perspectives of Metal-Based Electrocatalysts for Overall Electrochemical Water Splitting
title_short Recent Advances and Future Perspectives of Metal-Based Electrocatalysts for Overall Electrochemical Water Splitting
title_full Recent Advances and Future Perspectives of Metal-Based Electrocatalysts for Overall Electrochemical Water Splitting
title_fullStr Recent Advances and Future Perspectives of Metal-Based Electrocatalysts for Overall Electrochemical Water Splitting
title_full_unstemmed Recent Advances and Future Perspectives of Metal-Based Electrocatalysts for Overall Electrochemical Water Splitting
title_sort Recent Advances and Future Perspectives of Metal-Based Electrocatalysts for Overall Electrochemical Water Splitting
publishDate 2023
container_title Chemical Record
container_volume 23
container_issue 2
doi_str_mv 10.1002/tcr.202200149
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85143236332&doi=10.1002%2ftcr.202200149&partnerID=40&md5=01c37ba9c5532f65159399f47b5cf813
description Recently, the growing demand for a renewable and sustainable fuel alternative is contingent on fuel cell technologies. Even though it is regarded as an environmentally sustainable method of generating fuel for immediate concerns, it must be enhanced to make it extraordinarily affordable, and environmentally sustainable. Hydrogen (H2) synthesis by electrochemical water splitting (ECWS) is considered one of the foremost potential prospective methods for renewable energy output and H2 society implementation. Existing massive H2 output is mostly reliant on the steaming reformation of carbon fuels that yield CO2 together with H2 and is a finite resource. ECWS is a viable, efficient, and contamination-free method for H2 evolution. Consequently, developing reliable and cost-effective technology for ECWS was a top priority for scientists around the globe. Utilizing renewable technologies to decrease total fuel utilization is crucial for H2 evolution. Capturing and transforming the fuel from the ambient through various renewable solutions for water splitting (WS) could effectively reduce the need for additional electricity. ECWS is among the foremost potential prospective methods for renewable energy output and the achievement of a H2-based economy. For the overall water splitting (OWS), several transition-metal-based polyfunctional metal catalysts for both cathode and anode have been synthesized. Furthermore, the essential to the widespread adoption of such technology is the development of reduced-price, super functional electrocatalysts to substitute those, depending on metals. Many metal-premised electrocatalysts for both the anode and cathode have been designed for the WS process. The attributes of H2 and oxygen (O2) dynamics interactions on the electrodes of water electrolysis cells and the fundamental techniques for evaluating the achievement of electrocatalysts are outlined in this paper. Special emphasis is paid to their fabrication, electrocatalytic performance, durability, and measures for enhancing their efficiency. In addition, prospective ideas on metal-based WS electrocatalysts based on existing problems are presented. It is anticipated that this review will offer a straight direction toward the engineering and construction of novel polyfunctional electrocatalysts encompassing superior efficiency in a suitable WS technique. © 2022 The Chemical Society of Japan & Wiley-VCH GmbH.
publisher John Wiley and Sons Inc
issn 15278999
language English
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