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Atomically dispersed Pt and Fe sites and Pt-Fe nanoparticles for durable proton exchange membrane fuel cells

Chemistry

Atomically dispersed Pt and Fe sites and Pt-Fe nanoparticles for durable proton exchange membrane fuel cells

F. Xiao, Q. Wang, et al.

Discover a groundbreaking hybrid electrocatalyst that not only showcases a remarkable 3.7 times higher Pt mass activity compared to commercial Pt/C but also demonstrates outstanding durability, retaining 97% activity after extensive cycling! This innovative research, conducted by a team of experts, reveals the synergistic effects of the catalyst's unique composition for enhancing proton exchange membrane fuel cells.... show more
Abstract
Proton exchange membrane fuel cells convert hydrogen and oxygen into electricity without emissions. The high cost and low durability of Pt-based electrocatalysts for the oxygen reduction reaction hinder their wide application, and the development of non-precious metal electrocatalysts is limited by their low performance. Here we design a hybrid electrocatalyst that consists of atomically dispersed Pt and Fe single atoms and Pt-Fe alloy nanoparticles. Its Pt mass activity is 3.7 times higher than that of commercial Pt/C in a fuel cell. More importantly, the fuel cell with a low Pt loading in the cathode (0.015 mgPt cm−2) shows an excellent durability, with a 97% activity retention after 100,000 cycles and no noticeable current drop at 0.6 V for over 200 hours. These results highlight the importance of the synergistic effects among active sites in hybrid electrocatalysts and provide an alternative way to design more active and durable low-Pt electrocatalysts for electrochemical devices.
Publisher
Nature Catalysis
Published On
Jun 02, 2022
Authors
Fei Xiao, Qi Wang, Gui-Liang Xu, Xueping Qin, Inhui Hwang, Cheng-Jun Sun, Min Liu, Wei Hua, Hsi-wen Wu, Shangqian Zhu, Jin-Cheng Li, Jian-Gan Wang, Yuanmin Zhu, Duojie Wu, Zidong Wei, Meng Gu, Khalil Amine, Minhua Shao
Tags
electrocatalyst
Pt mass activity
PEMFCs
durability
synergistic effects
atomically dispersed
Pt-Fe alloy
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