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Engineering the atomic arrangement of bimetallic catalysts for electrochemical CO2reduction

  • Linfeng Xie
  • , Jiashun Liang
  • , Cameron Priest
  • , Tanyuan Wang
  • , Dong Ding
  • , Gang Wu
  • , Qing Li
  • Huazhong University of Science and Technology
  • SUNY Buffalo
  • Idaho National Laboratory

Research output: Contribution to journalArticlepeer-review

44 Scopus citations

Abstract

The electrochemical CO2reduction reaction (CO2RR) to form highly valued chemicals is a sustainable solution to address the environmental issues caused by excessive CO2emissions. Generally, it is challenging to achieve high efficiency and selectivity simultaneously in the CO2RR due to multi-proton/electron transfer processes and complex reaction intermediates. Among the studied formulations, bimetallic catalysts have attracted significant attention with promising activity, selectivity, and stability. Engineering the atomic arrangement of bimetallic nanocatalysts is a promising strategy for the rational design of structures (intermetallic, core/shell, and phase-separated structures) to improve catalytic performance. This review summarizes the recent advances, challenges, and opportunities in developing bimetallic catalysts for the CO2RR. In particular, we firstly introduce the possible reaction pathways on bimetallic catalysts concerning the geometric and electronic properties of intermetallic, core/shell, and phase-separated structures at the atomic level. Then, we critically examine recent advances in crystalline structure engineering for bimetallic catalysts, aiming to establish the correlations between structures and catalytic properties. Finally, we provide a perspective on future research directions, emphasizing current challenges and opportunities.

Original languageEnglish
Pages (from-to)1839-1854
Number of pages16
JournalChemical Communications
Volume57
Issue number15
DOIs
StatePublished - Feb 21 2021

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