Recent Advancements on Sustainable Electrochemical Water Splitting Hydrogen Energy Applications Based on Nanoscale Transition Metal Oxide (TMO) Substrates

Author:

Saeed Mohsin1,Shahzad Umer1,Marwani Hadi M.12,Asiri Abdullah M.12,ur Rehman Shujah3,Althomali Raed H.4,Rahman Mohammed M.12ORCID

Affiliation:

1. Department of Chemistry Faculty of Science King Abdulaziz University Jeddah 21589 Saudi Arabia

2. Center of Excellence for Advanced Materials Research (CEAMR) King Abdulaziz University Jeddah 21589 Saudi Arabia

3. Institute of Energy & Environmental Engineering University of the Punjab New Campus Lahore Pakistan

4. Department of Chemistry College of Art and Science Prince Sattam bin Abdulaziz University Wadi Al-Dawasir 11991 Saudi Arabia

Abstract

AbstractThe development of green hydrogen generation technologies is increasingly crucial to meeting the growing energy demand for sustainable and environmentally acceptable resources. Many obstacles in the advancement of electrodes prevented water electrolysis, long thought to be an eco‐friendly method of producing hydrogen gas with no carbon emissions, from coming to fruition. Because of their great electrical conductivity, maximum supporting capacity, ease of modification in valence states, durability in hard environments, and high redox characteristics, transition metal oxides (TMOs) have recently captured a lot of interest as potential cathodes and anodes. Electrochemical water splitting is the subject of this investigation, namely the role of transition metal oxides as both active and supportive sites. It has suggested various approaches for the logical development of electrode materials based on TMOs. These include adjusting the electronic state, altering the surface structure to control its resistance to air and water, improving the flow of energy and matter, and ensuring the stability of the electrocatalyst in challenging conditions. In this comprehensive review, it has been covered the latest findings in electrocatalysis of the Oxygen Evolution Reaction (OER) and Hydrogen Evaluation Reaction (HER), as well as some of the specific difficulties, opportunities, and current research prospects in this field.

Funder

Prince Sattam bin Abdulaziz University

Publisher

Wiley

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