Issue 9, 2023

A manganese complex on a gas diffusion electrode for selective CO2 to CO reduction

Abstract

Manganese carbonyl complexes have been studied extensively in solution as low cost, selective electrocatalysts with a low overpotential for CO2 reduction but experiments are typically at low current densities. In this work, we examined their application in a gas diffusion electrode (GDE) flow cell and achieved partial current densities for CO, jCO of ∼14 mA cm−2 (−0.98 VRHE) with a Faradaic efficiency of >50%. Although we did observe a gradual decrease in activity for the [Mn(2,2′-bipyridine)(CO)3Br]/MWCNT (Mnbpy) GDE with a near neutral electrolyte over a 5 h experiment, it still achieves a higher initial partial current density for CO at a lower overpotential than a Ag nanoparticle benchmark electrode. Promisingly, initial studies of the Mnbpy GDE in a zero-gap electrolyser using a reverse biased bipolar membrane (BPM) achieved FE for CO of 70% at 50 mA cm−2, despite the acidic environment induced through directly contacting the membranes cation exchange layer. Overall this study demonstrates the potential of GDEs for CO2 reduction based on a catalyst using earth abundant elements.

Graphical abstract: A manganese complex on a gas diffusion electrode for selective CO2 to CO reduction

Supplementary files

Article information

Article type
Paper
Submitted
24 Feb 2023
Accepted
05 Apr 2023
First published
05 Apr 2023
This article is Open Access
Creative Commons BY license

Sustainable Energy Fuels, 2023,7, 2301-2307

A manganese complex on a gas diffusion electrode for selective CO2 to CO reduction

C. Eagle, G. Neri, V. L. Piercy, K. Younis, B. Siritanaratkul and A. J. Cowan, Sustainable Energy Fuels, 2023, 7, 2301 DOI: 10.1039/D3SE00236E

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