Issue 14, 2023

A novel tandem reactor design based on nano-Cu electrocatalysts and microbial biocatalysts for converting CO2 into ethylene and acetate

Abstract

CO2 electrochemical conversion on copper electrocatalysts demonstrates selectivity and activity towards multicarbon compounds such as ethylene. However, the complex product distribution, as well as the wasted carbon and electrons in non-target products such as HCOOH, CO, and H2, can significantly increase the energy input and separation costs. As a result, we designed an electro-bio tandem reactor using copper electrocatalysts and microorganisms to transform CO2 into specific multicarbon compounds in both the gas and liquid phases. The unavoidable reducing products from electrocatalysis, including HCOOH in the liquid phase, and CO and H2 in the gas phase, can be consumed and recycled as electron donors or better carbon feedstocks for selective acetate synthesis in Moorella thermoacetica via the Wood–Ljungdahl pathway. In neutral electrolytes, the faradaic selectivity of acetate in liquid products is the highest (79.6%) for Cu-based CO2 electroreduction, and the electron conversion rate to ethylene and acetate is the highest for microbial electrosynthesis (8113.8 mmol h−1 m−2), demonstrating a green design for CO2 upcycling targeting multicarbon products via the parallel integration of electrocatalysis and fermentation.

Graphical abstract: A novel tandem reactor design based on nano-Cu electrocatalysts and microbial biocatalysts for converting CO2 into ethylene and acetate

Supplementary files

Article information

Article type
Paper
Submitted
30 mar 2023
Accepted
20 iyn 2023
First published
20 iyn 2023

Green Chem., 2023,25, 5712-5720

A novel tandem reactor design based on nano-Cu electrocatalysts and microbial biocatalysts for converting CO2 into ethylene and acetate

J. Liu, X. Guo, Z. Lyu, R. Song, P. Zhou, S. Ding, Y. Zhou, L. Jiang, Y. Lin and W. Zhu, Green Chem., 2023, 25, 5712 DOI: 10.1039/D3GC01025B

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