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Regulating reconstruction of oxide-derived Cu for electrochemical CO2 reduction toward n-propanol

  • Chang Long
  • , Xiaolong Liu
  • , Kaiwei Wan
  • , Yuheng Jiang
  • , Pengfei An
  • , Caoyu Yang
  • , Guoling Wu
  • , Wenyang Wang
  • , Jun Guo
  • , Lei Li
  • , Kanglei Pang
  • , Qun Li
  • , Chunhua Cui
  • , Shaoqin Liu*
  • , Ting Tan*
  • , Zhiyong Tang*
  • *Corresponding author for this work
  • National Center for Nanoscience and Technology
  • University of Chinese Academy of Sciences
  • University of Electronic Science and Technology of China
  • Harbin Institute of Technology
  • CAS - Institute of High Energy Physics
  • Tiangong University
  • Stockholm University

Research output: Contribution to journalArticlepeer-review

Abstract

Oxide-derived copper (OD-Cu) is the most efficient and likely practical electrocatalyst for CO2 reduction toward multicarbon products. However, the inevitable but poorly understood reconstruction from the pristine state to the working state of OD-Cu under strong reduction conditions largely hinders the rational construction of catalysts toward multicarbon products, especially C3 products like n-propanol. Here, we simulate the reconstruction of CuO and Cu2O into their derived Cu by molecular dynamics, revealing that CuO-derived Cu (CuOD-Cu) intrinsically has a richer population of undercoordinated Cu sites and higher surficial Cu atom density than the counterpart Cu2O-derived Cu (Cu2OD-Cu) because of the vigorous oxygen removal. In situ spectroscopes disclose that the coordination number of CuOD-Cu is considerably lower than that of Cu2OD-Cu, enabling the fast kinetics of CO2 reaction and strengthened binding of *C2 intermediate(s). Benefiting from the rich undercoordinated Cu sites, CuOD-Cu achieves remarkable n-propanol faradaic efficiency up to ~17.9%, whereas the Cu2OD-Cu dominantly generates formate.

Original languageEnglish
Article numbereadi6119
JournalScience Advances
Volume9
Issue number43
DOIs
StatePublished - Oct 2023

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