Issue 17, 2024

A sub-4 nm PtCu3 intermetallic catalyst with an L12-ordered structure toward efficient activity and durability for oxygen reduction

Abstract

Pt-based intermetallic alloys have shown bright prospects for promoting the activity and durability of fuel cell cathode oxygen reduction. However, avoiding particle sintering in the preparation of highly ordered platinum-based intermetallic compounds remains a challenge. In this work, urea was introduced for high-temperature co-reduction to obtain highly ordered intermetallic nanocrystals of ultra-small size (<4 nm) with an L12 phase structure. The attained L12-PtCu3/C achieves a half-wave potential of 0.941 V and possesses a mass activity of 1.33 A mgPt−1 reaching 11.1 times that of commercial Pt/C. After a 20k accelerated durability test, L12-PtCu3/C shows higher stability with a slight drop of half-wave potential by only 13 mV, and the mass activity decreased by only 27.1%. Density-functional theory indicates that the doping of transition metal Cu atoms and the formation of ordered intermetallic structures can introduce compressive strains that lower the d-band centers, weakening the adsorption of oxygen-containing intermediates and thus enhancing the catalytic activity.

Graphical abstract: A sub-4 nm PtCu3 intermetallic catalyst with an L12-ordered structure toward efficient activity and durability for oxygen reduction

Supplementary files

Article information

Article type
Paper
Submitted
30 Nov 2023
Accepted
20 Mar 2024
First published
25 Mar 2024

J. Mater. Chem. A, 2024,12, 10385-10391

A sub-4 nm PtCu3 intermetallic catalyst with an L12-ordered structure toward efficient activity and durability for oxygen reduction

H. Jiang, X. Xie, L. Bi, S. Yu, J. Zeng, L. Zhang, J. Shen and C. Li, J. Mater. Chem. A, 2024, 12, 10385 DOI: 10.1039/D3TA07406D

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