TY - JOUR
T1 - Binding Site Diversity Promotes CO2 Electroreduction to Ethanol
AU - Li, Yuguang C.
AU - Wang, Ziyun
AU - Yuan, Tiange
AU - Nam, Dae Hyun
AU - Luo, Mingchuan
AU - Wicks, Joshua
AU - Chen, Bin
AU - Li, Jun
AU - Li, Fengwang
AU - De Arquer, F. Pelayo García
AU - Wang, Ying
AU - Dinh, Cao Thang
AU - Voznyy, Oleksandr
AU - Sinton, David
AU - Sargent, Edward H.
N1 - Publisher Copyright:
© 2019 American Chemical Society.
PY - 2019/5/29
Y1 - 2019/5/29
N2 - The electrochemical reduction of CO2 has seen many record-setting advances in C2 productivity in recent years. However, the selectivity for ethanol, a globally significant commodity chemical, is still low compared to the selectivity for products such as ethylene. Here we introduce diverse binding sites to a Cu catalyst, an approach that destabilizes the ethylene reaction intermediates and thereby promotes ethanol production. We develop a bimetallic Ag/Cu catalyst that implements the proposed design toward an improved ethanol catalyst. It achieves a record Faradaic efficiency of 41% toward ethanol at 250 mA/cm2 and -0.67 V vs RHE, leading to a cathodic-side (half-cell) energy efficiency of 24.7%. The new catalysts exhibit an in situ Raman spectrum, in the region associated with CO stretching, that is much broader than that of pure Cu controls, a finding we account for via the diversity of binding configurations. This physical picture, involving multisite binding, accounts for the enhanced ethanol production for bimetallic catalysts, and presents a framework to design multimetallic catalysts to control reaction paths in CO2 reductions toward desired products.
AB - The electrochemical reduction of CO2 has seen many record-setting advances in C2 productivity in recent years. However, the selectivity for ethanol, a globally significant commodity chemical, is still low compared to the selectivity for products such as ethylene. Here we introduce diverse binding sites to a Cu catalyst, an approach that destabilizes the ethylene reaction intermediates and thereby promotes ethanol production. We develop a bimetallic Ag/Cu catalyst that implements the proposed design toward an improved ethanol catalyst. It achieves a record Faradaic efficiency of 41% toward ethanol at 250 mA/cm2 and -0.67 V vs RHE, leading to a cathodic-side (half-cell) energy efficiency of 24.7%. The new catalysts exhibit an in situ Raman spectrum, in the region associated with CO stretching, that is much broader than that of pure Cu controls, a finding we account for via the diversity of binding configurations. This physical picture, involving multisite binding, accounts for the enhanced ethanol production for bimetallic catalysts, and presents a framework to design multimetallic catalysts to control reaction paths in CO2 reductions toward desired products.
UR - http://www.scopus.com/inward/record.url?scp=85066873133&partnerID=8YFLogxK
U2 - 10.1021/jacs.9b02945
DO - 10.1021/jacs.9b02945
M3 - Article
C2 - 31067857
AN - SCOPUS:85066873133
SN - 0002-7863
VL - 141
SP - 8584
EP - 8591
JO - Journal of the American Chemical Society
JF - Journal of the American Chemical Society
IS - 21
ER -