Highly selective plasma-activated copper catalysts for carbon dioxide reduction to ethylene

Hemma Mistry(University of Central Florida), Ana Sofía Varela(Technische Universität Berlin), Cecile S. Bonifacio(University of Pittsburgh), Ioannis Zegkinoglou(Ruhr University Bochum), Ilya Sinev(Ruhr University Bochum), Yong‐Wook Choi(Ruhr University Bochum), Kim Kisslinger(Brookhaven National Laboratory), Eric A. Stach(Brookhaven National Laboratory), Judith C. Yang(University of Pittsburgh), Peter Strasser(Technische Universität Berlin), Beatriz Roldán Cuenya(Ruhr University Bochum)
Nature Communications
June 30, 2016
Cited by 1,200Open Access
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Abstract

There is an urgent need to develop technologies that use renewable energy to convert waste products such as carbon dioxide into hydrocarbon fuels. Carbon dioxide can be electrochemically reduced to hydrocarbons over copper catalysts, although higher efficiency is required. We have developed oxidized copper catalysts displaying lower overpotentials for carbon dioxide electroreduction and record selectivity towards ethylene (60%) through facile and tunable plasma treatments. Herein we provide insight into the improved performance of these catalysts by combining electrochemical measurements with microscopic and spectroscopic characterization techniques. Operando X-ray absorption spectroscopy and cross-sectional scanning transmission electron microscopy show that copper oxides are surprisingly resistant to reduction and copper(+) species remain on the surface during the reaction. Our results demonstrate that the roughness of oxide-derived copper catalysts plays only a partial role in determining the catalytic performance, while the presence of copper(+) is key for lowering the onset potential and enhancing ethylene selectivity.


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