Urea-Functionalized Silver Catalyst toward Efficient and Robust CO2 Electrolysis with Relieved Reliance on Alkali Cations

Journal Article (2022)
Author(s)

Sahil Garg (University of Queensland, Technical University of Denmark (DTU))

Mengran Li (TU Delft - ChemE/Materials for Energy Conversion and Storage, University of Queensland)

Tanveer Hussain (University of New England, Armidale, University of Queensland)

Mohamed Nazmi Idros (University of Queensland)

Yuming Wu (University of Queensland)

Xiu Song Zhao (University of Queensland)

Geoff G.X. Wang (University of Queensland)

Thomas E. Rufford (University of Queensland)

Research Group
ChemE/Materials for Energy Conversion and Storage
DOI related publication
https://doi.org/10.1021/acsami.2c05918
More Info
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Publication Year
2022
Language
English
Research Group
ChemE/Materials for Energy Conversion and Storage
Issue number
31
Volume number
14
Pages (from-to)
35504-35512
Downloads counter
174
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Institutional Repository
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Abstract

We report a new strategy to improve the reactivity and durability of a membrane electrode assembly (MEA)-type electrolyzer for CO2 electrolysis to CO by modifying the silver catalyst layer with urea. Our experimental and theoretical results show that mixing urea with the silver catalyst can promote electrochemical CO2 reduction (CO2R), relieve limitations of alkali cation transport from the anolyte, and mitigate salt precipitation in the gas diffusion electrode in long-term stability tests. In a 10 mM KHCO3 anolyte, the urea-modified Ag catalyst achieved CO selectivity 1.3 times better with energy efficiency 2.8-fold better than an untreated Ag catalyst, and operated stably at 100 mA cm-2 with a faradaic efficiency for CO above 85% for 200 h. Our work provides an alternative approach to fabricating catalyst interfaces in MEAs by modifying the catalyst structure and the local reaction environment for critical electrochemical applications such as CO2 electrolysis and fuel cells.

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