JOURNAL ARTICLE

Catalyzing Sustainable Water Splitting with Single Atom Catalysts: Recent Advances

Nasar AlamTayyaba NооrNaseem Iqbal

Year: 2024 Journal:   The Chemical Record Vol: 24 (3)Pages: e202300330-e202300330   Publisher: Wiley

Abstract

Abstract Electrochemical water splitting for sustainable hydrogen and oxygen production have shown enormous potentials. However, this method needs low‐cost and highly active catalysts. Traditional nano catalysts, while effective, have limits since their active sites are mostly restricted to the surface and edges, leaving interior surfaces unexposed in redox reactions. Single atom catalysts (SACs), which take advantage of high atom utilization and quantum size effects, have recently become appealing electrocatalysts. Strong interaction between active sites and support in SACs have considerably improved the catalytic efficiency and long‐term stability, outperforming their nano‐counterparts. This review‘s first section examines the Hydrogen Evolution Reaction (HER) and the Oxygen Evolution Reaction (OER). In the next section, SACs are categorized as noble metal, non‐noble metal, and bimetallic synergistic SACs. In addition, this review emphasizes developing methodologies for effective SAC design, such as mass loading optimization, electrical structure modulation, and the critical role of support materials. Finally, Carbon‐based materials and metal oxides are being explored as possible supports for SACs. Importantly, for the first time, this review opens a discussion on waste‐derived supports for single atom catalysts used in electrochemical reactions, providing a cost‐effective dimension to this vibrant research field. The well‐known design techniques discussed here may help in development of electrocatalysts for effective water splitting.

Keywords:
Water splitting Catalysis Bimetallic strip Oxygen evolution Nanotechnology Noble metal Electrochemistry Redox Electrocatalyst Materials science Chemistry Atom (system on chip) Hydrogen production Chemical engineering Computer science Photocatalysis Inorganic chemistry Physical chemistry Organic chemistry Electrode

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9
Cited By
1.65
FWCI (Field Weighted Citation Impact)
260
Refs
0.73
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Is in top 1%
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Citation History

Topics

Electrocatalysts for Energy Conversion
Physical Sciences →  Energy →  Renewable Energy, Sustainability and the Environment
Advanced Photocatalysis Techniques
Physical Sciences →  Energy →  Renewable Energy, Sustainability and the Environment
Catalytic Processes in Materials Science
Physical Sciences →  Materials Science →  Materials Chemistry
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