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Identifying Critical Electrode Metrics for Efficient, Selective CO2 Electrochemical Conversion: Article No. 034502

  • Twelve Benefit Corporation

Research output: Contribution to journalArticlepeer-review

Abstract

Low-temperature electrochemical CO2 reduction (CO2R) in zero-gap membrane electrode assembly (MEA) reactors presents a scalable route to fuels and carbon utilization. However, performance at industrially relevant current densities hinges on mesoscale catalyst layer integration, particularly at the ionomer|catalyst interface. Here, we demonstrate a generalizable in situ electrochemical impedance spectroscopy (EIS) method. We utilize this technique to decouple electrode-level parameters that are correlated to the overall MEA performance. By performing this ex situ EIS method on CO2-to-CO catalyst-coated membranes with systematically varied ionomer-to-catalyst (I:C) ratios, we reveal a pronounced dependence of performance, ion transport resistance, and catalyst utilization on the I:C ratio as well as the electrode conditioning. We demonstrate that an optimal I:C ratio exists at which ion transport resistance is minimized and Faradaic efficiency for CO production is maximized. Beyond the electrodes examined, here we compare ion transport resistance to MEA selectivity/Faradaic efficiency obtained in prior studies, revealing a clear correlation between the two. These results suggest that ion transport resistance within the catalyst layer may be a quantitative predictor of MEA performance which underscores the importance of mesoscale integration in achieving scalable CO2R technologies.
Original languageAmerican English
Number of pages9
JournalJournal of the Electrochemical Society
Volume173
Issue number3
DOIs
StatePublished - 2026

NLR Publication Number

  • NLR/JA-5K00-96839

Keywords

  • carbon dioxide reduction
  • CO2RR
  • diagnostic
  • electroanalytical chemistry
  • electrochemical
  • electrochemistry
  • hydrogen
  • in situ
  • membrane electrode assembly

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