Selective Increase in CO2 Electroreduction to Ethanol Activity at Nanograin‐Boundary‐Rich Mixed Cu(I)/Cu(0) Sites via Enriching Co‐Adsorbed CO and Hydroxyl Species

Author:

Zhang Ting1,Xu Shenglin2,Chen De‐Li1,Luo Ting1,Zhou Jinlei1,Kong Lichun1,Feng JiuJu1,Lu Ji‐Qing1,Weng Xuexiang1,Wang Ai‐Jun1,Li Zhengquan13,Su Yaqiong2,Yang Fa13ORCID

Affiliation:

1. Key Laboratory of the Ministry of Education for Advanced Catalysis Materials Instinute of Physical Chemisry College of Chemistry and Materials Science Zhejiang Normal University 321004 Jinhua Zhejiang China

2. School of Chemistry Engineering Research Center of Energy Storage Materials and Devices of Ministry of Education National Innovation Platform (Center) for Industry-Education Integration of Energy Storage Technology Xi'an Jiaotong University 710049 Xi'an China

3. Zhejiang Institute of Photoelectronics Zhejiang Normal University 321004 Jinhua Zhejiang China

Abstract

AbstractSelective producing ethanol from CO2 electroreduction is highly demanded, yet the competing ethylene generation route is commonly more thermodynamically preferred. Herein, we reported an efficient CO2‐to‐ethanol conversion (53.5 % faradaic efficiency at −0.75 V versus reversible hydrogen electrode (vs. RHE)) over an oxide‐derived nanocubic catalyst featured with abundant “embossment‐like” structured grain‐boundaries. The catalyst also attains a 23.2 % energy efficiency to ethanol within a flow cell reactor. In situ spectroscopy and electrochemical analysis identified that these dualphase Cu(I) and Cu(0) sites stabilized by grain‐boundaries are very robust over the operating potential window, which maintains a high concentration of co‐adsorbed *CO and hydroxyl (*OH) species. Theoretical calculations revealed that the presence of *OHad not only promote the easier dimerization of *CO to form *OCCO (ΔG~0.20 eV) at low overpotentials but also preferentially favor the key *CHCOH intermediate hydrogenation to *CHCHOH (ethanol pathway) while suppressing its dehydration to *CCH (ethylene pathway), which is believed to determine the remarkable ethanol selectivity. Such imperative intermediates associated with the bifurcation pathway were directly distinguished by isotope labelling in situ infrared spectroscopy. Our work promotes the understanding of bifurcating mechanism of CO2ER‐to‐hydrocarbons more deeply, providing a feasible strategy for the design of efficient ethanol‐targeted catalysts.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Zhejiang Province

Key Laboratory of Advanced Materials Processing Technology, Ministry of Education

Publisher

Wiley

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