4.6 Article

Ultimate Corrosion to Pt-Cu Electrocatalysts for Enhancing Methanol Oxidation Activity and Stability in Acidic Media

期刊

CHEMISTRY-A EUROPEAN JOURNAL
卷 27, 期 35, 页码 9124-9128

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/chem.202100754

关键词

directed transformation; electrocatalysts; hierarchical nanostructures; methanol oxidation; platinum

资金

  1. National Natural Science Foundation of China - Deutsche Forschungsgemeinschaft (NSFC-DFG) project (NSFC) [51861135313, DFG JA466/39-1]
  2. Sino-German Center COVID-19 Related Bilateral Collaborative Project [C-0046]
  3. Jilin Province Science and Technology Development Plan [20180101208JC]
  4. NSFC [21706199, 52002414]
  5. FRFCU [19lgzd16, 20lgpy77, 19lgpy112]
  6. ISTCP [2015DFE52870]
  7. NRF [113638]
  8. Guangdong Basic and Applied Basic Research Foundation [2019A1515110436, 2019A1515110590]
  9. Guangdong Province International Scientific and Technological Cooperation Projects [2020A0505100036]

向作者/读者索取更多资源

A corrosion method was developed for a Pt-Cu electrocatalyst with high activity and stability, offering a new strategy for the facile synthesis of a highly acid-stable PtM alloying and high-performance design for electrocatalysts.
Alloying platinum (Pt) with transition metals (M), as an established class of electrocatalysts, reduces the use of Pt and improves the electrocatalytic performance. However, the stability of transition metals in nanostructured platinum alloys is a fundamental and practical problem in electrocatalysis, due to leaching of transition metals under acidic operating condition. Here, a corrosion method has been developed for a Pt-Cu electrocatalyst with high activity (6.6 times that of commercial Pt/C) and excellent stability for the methanol oxidation reaction (MOR) under acidic operating conditions. The mechanism of formation has been studied, and possible mesostructured re-formation and atomic re-organization have been proposed. This work offers an effective strategy for the facile synthesis of a highly acid-stable PtM alloying and opens a door to high-performance design for electrocatalysts.

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