Issue 41, 2024

A Bi–Cu bimetallene array/carbonic anhydrase biohybrid for efficient and selective CO2 electroreduction at low concentration

Abstract

The dramatic increase in CO2 emission has caused extreme weather events in recent years. Electrocatalytic CO2 reduction reaction (CO2RR) to useful fuels is an effective way of solving CO2 emission. However, serious hydrogen reaction evolution interference and low Faraday efficiency restrict its large-scale application, especially at low CO2 concentrations. This study presents a novel biohybrid comprising Bi–Cu bimetallenes (Bi–Cu BMLs) and carbonic anhydrase (CA) for efficient and selective electroreduction of CO2 to formic acid at low CO2 concentration. Ultra-thin Bi–Cu BMLs were synthesized via a facile galvanic replacement reaction, providing abundant sites for CA immobilization. The incorporation of Bi effectively suppresses the hydrogen evolution reaction and enhances the selectivity of the formic acid product, while the immobilized CA significantly increases the local CO2 concentration at the electrode surface due to its exceptional CO2 hydration activity and rapidly reversible equilibrium. As a result, the CA/Bi–Cu BML biohybrid system demonstrates remarkable performance, achieving 100% selectivity and 88.57% faradaic efficiency for formic acid production. Notably, the system maintains a high faradaic efficiency of 77.58% even at 5% CO2 concentration. Furthermore, the biohybrid catalyst exhibits excellent stability and reusability, underscoring its potential for practical applications in dilute CO2 streams.

Graphical abstract: A Bi–Cu bimetallene array/carbonic anhydrase biohybrid for efficient and selective CO2 electroreduction at low concentration

Supplementary files

Article information

Article type
Paper
Submitted
04 Aug 2024
Accepted
16 Sep 2024
First published
27 Sep 2024

J. Mater. Chem. A, 2024,12, 28374-28380

A Bi–Cu bimetallene array/carbonic anhydrase biohybrid for efficient and selective CO2 electroreduction at low concentration

M. Shu, X. Zhu, Z. Wang, X. Xiao, S. Li, Y. Chen and Y. Jiang, J. Mater. Chem. A, 2024, 12, 28374 DOI: 10.1039/D4TA05445H

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