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Coupled Interfacial Kinetics and Transport Resistances Govern High-Current Behavior in Bipolar Membranes
- Torres, Claudio Adrian Ruiz;
- Zhu, Yaguang;
- Vulpin, Olivia;
- Wu, Yifan;
- Li, Zhuo;
- Drakopoulos, Michael;
- Vo, Nghia T;
- Boettcher, Shannon W;
- Hatzell, Marta C;
- Hatzell, Kelsey B
Published Web Location
https://doi.org/10.1021/acsenergylett.6c01540Abstract
Abstract Bipolar membranes (BPMs) enable electrochemical systems that operate across large pH gradients; however, high-current operation is often limited by voltage losses whose origins remain difficult to resolve in membrane−electrode assemblies. Here, we combine electrochemical impedance spectroscopy with distribution of relaxation times (EIS–DRT) analysis and operando synchrotron X-ray diffraction to examine interfacial polarization, membrane hydration, and transport in commercial and synthesized BPMs. EIS–DRT isolates the BPM-associated interfacial contribution and shows that the commercial BPM exhibits larger water-dissociation-associated overpotentials than the synthesized BPM. Operando hydration mapping shows that both membranes retain water at the bipolar junction during high-current operation, while anode-adjacent hydration gradients are more pronounced in the commercial membrane. These results indicate that high-current voltage losses are not governed by junction water starvation alone but by coupled interfacial polarization and transport resistances.
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