Issue 7, 2023

Design strategies of Pt-based electrocatalysts and tolerance strategies in fuel cells: a review

Abstract

As highly efficient conversion devices, proton-exchange-membrane fuel cells (PEMFCs) can directly convert chemical energy to electrical energy with high efficiencies and lower or even zero emissions compared to combustion engines. However, the practical applications of PEMFCs have been seriously hindered by the intermediates (especially CO) poisoning of anodic Pt catalysts. Hence, how to improve the CO tolerance of the needed Pt catalysts and reveal their anti-CO poisoning mechanism are the key points to developing novel anti-toxic Pt-based electrocatalysts. To date, two main strategies have received increasing attention in improving the CO tolerance of Pt-based electrocatalysts, including alloying Pt with a second element and fabricating composites with geometry and interface engineering. Herein, we will first discuss the latest developments of Pt-based alloys and their anti-CO poisoning mechanism. Subsequently, a detailed description of Pt-based composites with enhanced CO tolerance by utilizing the synergistic effect between Pt and carriers is introduced. Finally, a brief perspective and new insights on the design of Pt-based electrocatalysts to inhibit CO poisoning in PEMFCs are also presented.

Graphical abstract: Design strategies of Pt-based electrocatalysts and tolerance strategies in fuel cells: a review

Article information

Article type
Review Article
Submitted
01 Dec 2022
Accepted
29 Jan 2023
First published
07 Feb 2023
This article is Open Access
Creative Commons BY-NC license

RSC Adv., 2023,13, 4803-4822

Design strategies of Pt-based electrocatalysts and tolerance strategies in fuel cells: a review

W. Luo, Y. Jiang, M. Wang, D. Lu, X. Sun and H. Zhang, RSC Adv., 2023, 13, 4803 DOI: 10.1039/D2RA07644F

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