Issue 37, 2021

Coralloid Au enables high-performance Zn–CO2 battery and self-driven CO production

Abstract

High current density and low energy consumption in electrocatalytic CO2 conversion are two key factors for practical CO2 fixation. Herein, coralloid Au was prepared via a facile electrodeposition approach, which showed remarkable performance in a membrane electrode assembly system with the highest CO faradaic efficiency (FECO) of 94.2% at −60 mA cm−2 and 45.3 ml h−1 CO productivity. By using coralloid Au, we built an aqueous Zn–CO2 battery; it yields a high power density of 0.7 mW cm−2, 68 h cyclability, and maintains 63% FECO at a discharge current density of −3.0 mA cm−2. Further, a self-driven CO2 electrolysis unit powered by the as-assembled Zn–CO2 battery was developed for the first time, which achieves a maximum CO productivity of 0.44 ml h−1. Theoretical calculations reveal that the Au (111) plane not only delivers a low energy barrier for the first hydrogenation of CO2 molecule but also stabilizes the key *COOH intermediate, both of which are responsible for efficient electroreduction of CO2 to CO.

Graphical abstract: Coralloid Au enables high-performance Zn–CO2 battery and self-driven CO production

Supplementary files

Article information

Article type
Paper
Submitted
24 May 2021
Accepted
16 Jul 2021
First published
16 Jul 2021

J. Mater. Chem. A, 2021,9, 21024-21031

Coralloid Au enables high-performance Zn–CO2 battery and self-driven CO production

S. Gao, M. Jin, J. Sun, X. Liu, S. Zhang, H. Li, J. Luo and X. Sun, J. Mater. Chem. A, 2021, 9, 21024 DOI: 10.1039/D1TA04360A

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