High-Performance Catalytic Systems for Superior Photo and Electrochemical Hydrogen Production

Abstract

The increasing need for green energy production has spurred investigations into photochemical (PC) and electrochemical (EC) water splitting, a promising approach that consumes solar energy to produce hydrogen fuel directly. Despite these achievements that have been made over the recent years, the real-world implications of these technologies are still constrained by low solar-to-hydrogen efficiency, short charge recombination, slow reaction rates and low long-term stability of catalytic systems. Also, there is still a gap in knowledge related to catalyst design and their performance in PC and EC systems. This review highlights the design and optimization of high-performance catalytic systems for enhanced PC and EC hydrogen generation. Various strategies have been discussed for improving catalytic efficiency including band gap engineering, surface area enhancement, heterojunction formation, and defect engineering that broaden light absorption and boost reaction kinetics. Particular attention is given to the role of electrocatalysts and photocatalysts in facilitating charge separation and enhancing the hydrogen evolution reaction (HER). Additionally, the impacts of size, pH and surface area of the catalysts on PC and EC performance have been examined. Through critical correlation between structural and operative factors with catalytic activity, this review would help to fill the current knowledge gap and provide a more comprehensive framework in the development of catalysts.

Article information

Article type
Review Article
Submitted
22 Feb 2026
Accepted
16 Mar 2026
First published
18 Mar 2026

Phys. Chem. Chem. Phys., 2026, Accepted Manuscript

High-Performance Catalytic Systems for Superior Photo and Electrochemical Hydrogen Production

A. Anas, M. Rahman, M. Osama, S. Shaheen and T. Ahmad, Phys. Chem. Chem. Phys., 2026, Accepted Manuscript , DOI: 10.1039/D6CP00641H

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