Atomically Isolated Cd Sites Boosting CO Electroreduction to C <sub>2+</sub> Alcohols at Ampere‐Level Current Densities
Abstract
Abstract Herein, two Cu‐based model electrocatalysts, Cu nanosheets modified with Cd single atoms (Cd‐SACs@Cu NS) and unmodified Cu nanosheets (Cu NS), were rationally designed to investigate the C–C coupling to C 2+ alcohols mechanisms in CORR. Compared to Cu NS, Cd‐SACs@Cu NS exhibits a significantly enhanced Faradaic efficiency (FE) for C 2+ alcohols of nearly 70% at an unprecedented current density of 1100 mA cm −2 and maintains a higher FE (>50%) over a broad range of current densities (100–2100 mA cm −2 ) under alkaline conditions in a flow cell. In situ characterizations and theoretical studies reveal that the enhanced selectivity toward C 2+ alcohols on Cd‐SACs@Cu NS is attributed to the improved H 2 O dissociation at atomically dispersed Cd sites and enhanced CO adsorption on the paired Cu atoms adjacent to single Cd atoms. These effects synergistically facilitate the spillover of hydrogen atoms from Cd to Cu sites, thereby promoting the protonation at the β‐carbon of *CH 2 CHO, which leads to the selective formation of C 2+ alcohols. In contrast, the unmodified Cu NS is prone to promoting the cleavage of the C─O bond, thereby facilitating the generation of C 2 H 4 .
Article Details
Authors (6)
Yu Zhang
Xiangya Hospital, Central South University Changsha China
Changgeng Wei
Institute For Theoretical Physics and Bremen Center For Computational Materials Science University of Bremen Bremen Germany
Bin Nan
Shanghai Synchrotron Radiation Facility, Shanghai Advanced Research Institute Chinese Academy of Sciences Shanghai 201210 P.R. China
Thomas Frauenheim
School of Science
Jian Yang
Junjie Mao