ZnO/Cu2S PN-junctions with built-in electric field for enhanced CO2 electroreduction

D Daojian Ye (Jiangxi Provincial Key Laboratory of Green Hydrogen and Advanced Catalysis, College of Physics, Communication and Electronics, Jiangxi Normal University 1 , 99 Ziyang Avenue, Nanchang 330022, Jiangxi,) W Weiyang Xu (Jiangxi Provincial Key Laboratory of Green Hydrogen and Advanced Catalysis, College of Physics, Communication and Electronics, Jiangxi Normal University 1 , 99 Ziyang Avenue, Nanchang 330022, Jiangxi,) W Wenda Zhou X Xingfang Luo (Jiangxi Provincial Key Laboratory of Green Hydrogen and Advanced Catalysis, College of Physics, Communication and Electronics, Jiangxi Normal University 1 , 99 Ziyang Avenue, Nanchang 330022, Jiangxi,) Y Yong Yang T Ting Yu (Department of Chemistry, McGill University, 801 Sherbrooke Street W, Montréal, Quebec H3A 0B8, Canada) W Wen Lei C Cailei Yuan (Key Laboratory of Green Hydrogen Energy and Advanced Catalysis of Jiangxi Province, School of Physics, Communication and Electronics, Jiangxi Normal University , Nanchang 330022, Jiangxi,)

Abstract

A full stack strategy, including facilitating the capture of CO2 molecules on catalysts, regulating intermediates, and releasing products, is highly needed to break the bottleneck for CO2 electroreduction to CO. The electric field is expected to promote capture of CO2, reduce energy barriers of reaction, and efficiently release CO, boosting the overall CO2 reduction reaction (CO2RR) activities. In this work, ZnO/Cu2S PN-junctions with a built-in electric field were fabricated. Kelvin probe force microscopy measurements confirmed that the presence of the built-in electric field facilitates the adsorption of more CO2 molecules onto the catalyst surface. Furthermore, theoretical calculations and electrochemical testing demonstrated that the built-in electric field lowers the reaction energy barrier and effectively modulates the reaction intermediates, contributing to enhanced catalytic performance. This work provides a full stack strategy to improve CO2RR performance and thinking for gas-fed catalytic reactions.

Article Details

Volume / Issue Vol. 126, Issue 6
Published February 10, 2025
ISSN 0003-6951
Publisher American Institute of Physics

Journal Info

Applied Physics Letters

American Institute of Physics

ISSN: 0003-6951 Physical Sciences

Authors (8)

D

Daojian Ye

Jiangxi Provincial Key Laboratory of Green Hydrogen and Advanced Catalysis, College of Physics, Communication and Electronics, Jiangxi Normal University 1 , 99 Ziyang Avenue, Nanchang 330022, Jiangxi,

W

Weiyang Xu

Jiangxi Provincial Key Laboratory of Green Hydrogen and Advanced Catalysis, College of Physics, Communication and Electronics, Jiangxi Normal University 1 , 99 Ziyang Avenue, Nanchang 330022, Jiangxi,

W

Wenda Zhou

X

Xingfang Luo

Jiangxi Provincial Key Laboratory of Green Hydrogen and Advanced Catalysis, College of Physics, Communication and Electronics, Jiangxi Normal University 1 , 99 Ziyang Avenue, Nanchang 330022, Jiangxi,

Y

Yong Yang

T

Ting Yu

Department of Chemistry, McGill University, 801 Sherbrooke Street W, Montréal, Quebec H3A 0B8, Canada

W

Wen Lei

C

Cailei Yuan

Key Laboratory of Green Hydrogen Energy and Advanced Catalysis of Jiangxi Province, School of Physics, Communication and Electronics, Jiangxi Normal University , Nanchang 330022, Jiangxi,