Litcius/Paper detail

Mitigation of Carbon Crossover in CO<sub>2</sub> Electrolysis by Use of Bipolar Membranes

Björn Eriksson, Tristan Asset, Francesco Spanu, Frédéric Lecoeur, Marc Dupont, Felipe A. Garcés‐Pineda, José Ramón Galán‐Mascarós, Sara Cavalière, Jacques Rozière, Frédéric Jaouen

2022Journal of The Electrochemical Society31 citationsDOIOpen Access PDF

Abstract

The selectivity of CO 2 electrolyzers has hitherto mainly been associated with the cathode selectivity. A few recent studies have shown that the nature of the polymer membrane can impact the system ionic selectivity, with anion exchange membranes (AEM) leading to high crossover of (bi)carbonates during operation and a CO 2 pumping effect. In the present work, we investigate and compare CO 2 crossover during operation through an AEM and a bipolar membrane (BPM) in a flow cell fed with gaseous CO 2 . With AEM, starting with 1 M KHCO 3 catholyte and 1 M KOH anolyte, the anolyte pH rapidly drops from 14 to 8. This triggers an increase of 1.2 V in cell voltage at 45 mA·cm −2 , due to increased OER overpotential and anolyte resistance. Steady-state operation at 45 mA·cm −2 with the AEM results in a CO 2 /O 2 ratio of 3.6 at the anode. With BPM, the anolyte pH decreases more slowly, and the CO 2 /O 2 ratio at the anode under steady-state at 45 mA·cm −2 is only 0.38. Overall, the cell voltage is lower with the BPM than with the AEM at steady-state. These results show the potential of BPMs to mitigate carbon crossover, which could be further reduced by optimizing their design.

Topics & Concepts

AnodeElectrolysisOverpotentialChemistryMembraneCathodeSelectivityIon exchangeSteady state (chemistry)Polymer electrolyte membrane electrolysisCarbon fibersAnalytical Chemistry (journal)Inorganic chemistryChemical engineeringIonMaterials scienceChromatographyElectrodeElectrochemistryElectrolyteOrganic chemistryPhysical chemistryCatalysisComposite numberBiochemistryEngineeringComposite materialCO2 Reduction Techniques and CatalystsAdvanced battery technologies researchIonic liquids properties and applications