Targeted C-O Bond Cleavage of *Ch2cho at Copper Active Sites for Efficient Electrosynthesis of Ethylene from Co2 Reduction

30 Pages Posted: 7 Feb 2024

See all articles by Huiying Zhang

Huiying Zhang

Beijing University of Chemical Technology

Xiaojun Wang

Beijing University of Chemical Technology

Yanfei Sun

Beijing University of Chemical Technology

Xiaoxuan Wang

Beijing University of Chemical Technology

Zheng Tang

Beijing University of Chemical Technology

Shuyuan Li

Beijing University of Chemical Technology

Xueying Gao

Beijing University of Chemical Technology

Jinrui Wang

Beijing University of Chemical Technology

Zishan Hou

Beijing University of Chemical Technology

Kaiqi Nie

affiliation not provided to SSRN

Jiangzhou Xie

University of New South Wales (UNSW)

Zhiyu Yang

Beijing University of Chemical Technology

Yi-Ming Yan

Beijing University of Chemical Technology

Abstract

*CH2CHO, a pivotal intermediate in CO2 reduction reaction (CO2RR) on copper-based catalysts, hinges on the strength of Cu-C and C-O bonds for the selective production of ethanol and ethylene. However, the targeted cleavage of these bonds at Cu active sites presents a formidable challenge. In this study, we manipulated the selective C-O bond breaking at Cu through an electron enrichment strategy, steering the reaction towards ethylene synthesis. Both experimental and theoretical investigations reveal that Gd incorporation elevates electron density at Cu sites, thereby enhancing Cu-O interaction and concurrently weakening the C-O bond at the critical Cu-*O-CHCH2 bifurcation point. Notably, Gd-doped Cu2O (Gd-Cu2O) demonstrated a 1.43-fold increase in the ethylene/CO ratio relative to undoped Cu2O. This alteration steers the reaction mechanism towards ethylene generation. Our study highlights the pivotal role of regulating reaction intermediates in optimizing activity and selectivity of CO2RR in copper-based catalysts, providing valuable insights for future catalyst development.

Keywords: CO2 electroreduction, *CH2CHO, selective bond breaking, Cu-O bond, ethylene

Suggested Citation

Zhang, Huiying and Wang, Xiaojun and Sun, Yanfei and Wang, Xiaoxuan and Tang, Zheng and Li, Shuyuan and Gao, Xueying and Wang, Jinrui and Hou, Zishan and Nie, Kaiqi and Xie, Jiangzhou and Yang, Zhiyu and Yan, Yi-Ming, Targeted C-O Bond Cleavage of *Ch2cho at Copper Active Sites for Efficient Electrosynthesis of Ethylene from Co2 Reduction. Available at SSRN: https://ssrn.com/abstract=4719356 or http://dx.doi.org/10.2139/ssrn.4719356

Huiying Zhang

Beijing University of Chemical Technology ( email )

15 N. 3rd Ring Rd E
Chaoyang, Beijing, 201204
China

Xiaojun Wang

Beijing University of Chemical Technology ( email )

15 N. 3rd Ring Rd E
Chaoyang, Beijing, 201204
China

Yanfei Sun

Beijing University of Chemical Technology ( email )

15 N. 3rd Ring Rd E
Chaoyang, Beijing, 201204
China

Xiaoxuan Wang

Beijing University of Chemical Technology ( email )

15 N. 3rd Ring Rd E
Chaoyang, Beijing, 201204
China

Zheng Tang

Beijing University of Chemical Technology ( email )

15 N. 3rd Ring Rd E
Chaoyang, Beijing, 201204
China

Shuyuan Li

Beijing University of Chemical Technology ( email )

15 N. 3rd Ring Rd E
Chaoyang, Beijing, 201204
China

Xueying Gao

Beijing University of Chemical Technology ( email )

15 N. 3rd Ring Rd E
Chaoyang, Beijing, 201204
China

Jinrui Wang

Beijing University of Chemical Technology ( email )

15 N. 3rd Ring Rd E
Chaoyang, Beijing, 201204
China

Zishan Hou

Beijing University of Chemical Technology ( email )

15 N. 3rd Ring Rd E
Chaoyang, Beijing, 201204
China

Kaiqi Nie

affiliation not provided to SSRN ( email )

Jiangzhou Xie

University of New South Wales (UNSW) ( email )

Zhiyu Yang

Beijing University of Chemical Technology ( email )

15 N. 3rd Ring Rd E
Chaoyang, Beijing, 201204
China

Yi-Ming Yan (Contact Author)

Beijing University of Chemical Technology ( email )

15 N. 3rd Ring Rd E
Chaoyang, Beijing, 201204
China

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