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 language | American English |
|---|---|
| Number of pages | 9 |
| Journal | Journal of the Electrochemical Society |
| Volume | 173 |
| Issue number | 3 |
| DOIs | |
| State | Published - 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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