Transient assembly of precision-tuned platinum-skin intermetallic catalysts for fuel cells

Highly efficient catalysts require precisely engineered intricate structures, yet conventional thermodynamically controlled syntheses often involve cumbersome procedures and limited structural precision. We report a nonequilibrium transient assembly strategy for the ultrafast synthesis of intricately structured nanocatalysts, including core-shell platinum (Pt)–skinned intermetallic nanocrystals exemplified by Pt@PtFe-i. By using a periodic thermal-pulse protocol to drive the continuous evolution of high-energy transient PtFe configurations, we achieved the synchronous assembly of a high-order PtFe intermetallic core and an atomic-layer-precise Pt skin. The Pt@PtFe-i catalyst exhibits coordination-dependent compressive strain within the Pt skin, creating a high density of highly active sites for the oxygen reduction reaction. The H 2 -air fuel cell with Pt@PtFe-i delivers a peak power of 1.25 watts per square centimeter at a cathode Pt loading of 0.1 milligrams per square centimeter, with a small peak power loss of 3.2% after 30,000 accelerated durability testing cycles.

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Publication Details

Journal
Science
Published
2026-07-09
DOI
https://doi.org/10.1126/science.aeg2036
Primary Topic
Electrocatalysts for Energy Conversion
Type
article
Field-Weighted Citation Impact
0.00

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article

Transient assembly of precision-tuned platinum-skin intermetallic catalysts for fuel cells

X Wang, Zhong Wu, Jihan Zhou, Wenbin Hu et al.
Science
Electrocatalysts for Energy Conversion
article

Transient assembly of precision-tuned platinum-skin intermetallic catalysts for fuel cells

X Wang, Zhong Wu, Jihan Zhou, Wenbin Hu, Tao Zhang, Bin Liu, Yanan Chen, Ming Wen, Zezhou Li, Jia Ding, Jiahui Feng, Wanqing Song, X Y Yang
article en

Abstract

Highly efficient catalysts require precisely engineered intricate structures, yet conventional thermodynamically controlled syntheses often involve cumbersome procedures and limited structural precision. We report a nonequilibrium transient assembly strategy for the ultrafast synthesis of intricately structured nanocatalysts, including core-shell platinum (Pt)–skinned intermetallic nanocrystals exemplified by Pt@PtFe-i. By using a periodic thermal-pulse protocol to drive the continuous evolution of high-energy transient PtFe configurations, we achieved the synchronous assembly of a high-order PtFe intermetallic core and an atomic-layer-precise Pt skin. The Pt@PtFe-i catalyst exhibits coordination-dependent compressive strain within the Pt skin, creating a high density of highly active sites for the oxygen reduction reaction. The H 2 -air fuel cell with Pt@PtFe-i delivers a peak power of 1.25 watts per square centimeter at a cathode Pt loading of 0.1 milligrams per square centimeter, with a small peak power loss of 3.2% after 30,000 accelerated durability testing cycles.

ScienceVol. 393(6807)
Tianjin University (CN), City University of Hong Kong (HK), Peking University (CN), Beijing National Laboratory for Molecular Sciences (CN), Kunming Institute of Precious Metals (CN)
National Natural Science Foundation of China, Natural Science Foundation of Tianjin City, National Key Research and Development Program of China
Affordable and clean energy
Openalex Percentile: Top 22%
Electrocatalysts for Energy Conversion
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