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May 4, 2026Micromachines1 citationsOpen Access

Advancing Functional Electrocatalysts for Hybrid Water Splitting: Strategies for Energy-Efficient Hydrogen Production

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TPThirukumaran PeriyasamySAShakila Parveen AsrafaliJLJaewoong Lee

Key Points

  • The aim is to enhance hydrogen production through advanced electrocatalysts for hybrid water splitting.
  • Reviews physicochemical techniques for assessing electrocatalyst activity under operational conditions.
  • Evaluates various noble-metal, nonprecious-metal, and metal-free nanocarbon catalysts in acidic and alkaline media.
  • Explores alternative anodic reactions replacing conventional oxygen evolution reactions.
  • Highlights the efficiency gains of replacing OER with valuable oxidation processes.
  • Identifies challenges in durability and performance of multifunctional electrocatalysts.
  • Suggests future research directions for sustainable hydrogen production systems.

Abstract

Electrocatalytic water splitting powered by renewable energy is a promising route for sustainable hydrogen production. Rather than developing separate catalysts for HER and OER, recent efforts focus on multifunctional electrocatalysts that can efficiently drive both reactions, simplifying system design and improving efficiency. A major limitation of conventional water splitting is the high overpotential and low-value oxygen production in OER. To overcome this, hybrid water splitting replaces OER with more valuable oxidation reactions, such as pollutant degradation or organic upgrading, enhancing overall energy and economic efficiency. This review covers the fundamentals of water splitting and highlights key physicochemical techniques for probing electrocatalyst activity, particularly structural reconstruction under operating conditions. It evaluates noble-metal, nonprecious-metal, and metal-free nanocarbon catalysts in both acidic and alkaline media, with emphasis on their roles in alternative anodic reactions. Finally, it outlines current challenges and future directions for developing efficient, durable, and sustainable electrocatalysts for advanced hydrogen production systems.

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Cite This Study

Periyasamy et al. (2026) studied this question.

synapsesocial.com/papers/69f837933ed186a739981c42https://doi.org/10.3390/mi17050548
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