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Dual-Scale Integration Design of Sn–ZnO Catalyst toward Efficient and Stable CO2 Electroreduction

  • Bohua Ren
  • , Zhen Zhang
  • , Guobin Wen
  • , Xiaowen Zhang
  • , Mi Xu
  • , Yueying Weng
  • , Yihang Nie
  • , Haozhen Dou
  • , Yi Jiang
  • , Ya Ping Deng
  • , Guiru Sun
  • , Dan Luo
  • , Lingling Shui
  • , Xin Wang
  • , Ming Feng
  • , Aiping Yu
  • , Zhongwei Chen
  • South China Normal University
  • University of Waterloo
  • Jilin Normal University

科研成果: 期刊稿件文章同行评审

78 引用 (Scopus)

摘要

Electrochemical CO2 reduction to CO is a potential sustainable strategy for alleviating CO2 emission and producing valuable fuels. In the quest to resolve its current problems of low-energy efficiency and insufficient durability, a dual-scale design strategy is proposed by implanting a non-noble active Sn–ZnO heterointerface inside the nanopores of high-surface-area carbon nanospheres (Sn–ZnO@HC). The metal d-bandwidth tuning of Sn and ZnO alters the extent of substrate–molecule orbital mixing, facilitating the breaking of the *COOH intermediate and the yield of CO. Furthermore, the confinement effect of tailored nanopores results in a beneficial pH distribution in the local environment around the Sn–ZnO nanoparticles and protects them against leaching and aggregating. Through integrating electronic and nanopore-scale control, Sn–ZnO@HC achieves a quite low potential of −0.53 V vs reversible hydrogen electrode (RHE) with 91% Faradaic efficiency for CO and an ultralong stability of 240 h. This work provides proof of concept for the multiscale design of electrocatalysts.

源语言英语
文章编号2204637
期刊Advanced Materials
34
38
DOI
出版状态已出版 - 22 9月 2022
已对外发布

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