Innovative strategies for designing and constructing efficient fuel cell electrocatalysts

Abstract

Polymer electrolyte membrane fuel cells (PEMFCs) are one of the most promising energy conversion devices due to their high efficiency and zero emission; however, two major challenges, high cost and short lifetime, have been hindering the commercialization of fuel cells. Achieving low-Pt or non-precious metal oxygen reduction reaction (ORR) electrocatalysts is one of the main research ideas in this field. In this review, the degradation mechanism of Pt-based catalysts is firstly explained and elucidated, and then five strategies are suggested for the reduction of Pt usage without loss of activity and durability: modulation of metal–support interactions, optimization of local ionomers and mass transport, modulation of composition, modulation of structure, and multi-site synergistic effects. For carbon-based non-precious metal catalysts, the problems and challenges faced by heteroatom/transition-metal doped carbon-based catalysts are discussed, and several strategies to improve the activity of heteroatom/transition-metal doped carbon catalysts are suggested. Particularly, an innovative quantum well catalyst structure reported quite recently is presented which may open up new prospects for the development of fuel cell technology. Finally, this review concludes with a brief conclusion and prospects for future development of low-Pt and non-precious metal fuel cell electrocatalysts.

Graphical abstract: Innovative strategies for designing and constructing efficient fuel cell electrocatalysts

Article information

Article type
Feature Article
Submitted
14 Nov 2024
Accepted
30 Dec 2024
First published
02 Jan 2025

Chem. Commun., 2025, Advance Article

Innovative strategies for designing and constructing efficient fuel cell electrocatalysts

C. Huang, F. Wang, X. Chen, J. Li, M. Shao and Z. Wei, Chem. Commun., 2025, Advance Article , DOI: 10.1039/D4CC05928J

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