A Highly Active Star Decahedron Cu Nanocatalyst for Hydrocarbon Production at Low Overpotentials
Abstract
The electrochemical carbon dioxide reduction reaction (CO2RR) presents a viable approach to recycle CO2 gas into low carbon fuels. Thus, the development of highly active catalysts at low overpotential is desired for this reaction. Herein, a high‐yield synthesis of unique star decahedron Cu nanoparticles (SD‐Cu NPs) electrocatalysts, displaying twin boundaries (TBs) and multiple stacking faults, which lead to low overpotentials for methane (CH4) and high efficiency for ethylene (C2H4) production, is reported. Particularly, SD‐Cu NPs show an onset potential for CH4 production lower by 0.149 V than commercial Cu NPs. More impressively, SD‐Cu NPs demonstrate a faradaic efficiency of 52.43% ± 2.72% for C2H4 production at −0.993 ± 0.0129 V. The results demonstrate that the surface stacking faults and twin defects increase CO binding energy, leading to the enhanced CO2RR performance on SD‐Cu NPs.
Document Details
- Document Type
- Pub Defense Publication
- Publication Date
- Dec 14, 2018
- Source ID
- 10.1002/adma.201805405
Entities
People
- Chungseok Choi
- Huilong Fei
- Michelle Flores Espinosa
- Tao Cheng
- William Andrew Goddard III
- Xiangfeng Duan
- Yu Huang
Organizations
- California Institute of Technology
- National Science Foundation
- Office of Naval Research
- United States Department of Energy
- University of California, Los Angeles