DOE OSTI · 3387197
Nanometer Scale Imaging to Develop Quantitative Descriptors of Bipolar Membrane Junction Structure
Abstract
Swings in pH can be achieved by electrically polarizing a bipolar membrane (BPM) to drive water dissociation at the BPM junction for electrochemical conversion and separation processes. BPM junction design is critical to tailor performance for specific applications; however, characterization techniques capable of resolving the nanometer scale physical structure of the junction are limited. We present sample preparation, imaging, and analysis workflows that are adaptable to a variety of BPM junction architectures. Atomic force microscopy produces BPM junction images with nanometer scale lateral resolution for samples with and without a graphene oxide water dissociation catalyst in the junction. Subsequent image segmentation and analysis quantify line edge roughness and catalyst layer thickness as descriptors of junction structure. Comparison of pre- and post-electrodialysis junctions suggests electric field-induced alignment of catalyst particles during electrodialysis. This characterization workflow can inform manufacturing protocols, computational modeling, and failure mode analysis for next-generation BPMs.
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Kelly, Maria [National Laboratory of the Rockies, Golden, CO (United States)], Dunn, Emily [California Institute of Technology], Spickermann, Ellis [California Institute of Technology], Gruber, Josephine [National Laboratory of the Rockies, Golden, CO (United States)], Lasalde-Ramirez, Cesar [California Institute of Technology], Romero Zavala, P. N. [University of Colorado Boulder], Lucas, Eowyn [California Institute of Technology], Gupta, Ankur [University of Colorado Boulder], Atwater, Harry [California Institute of Technology], Smith, Wilson [National Laboratory of the Rockies, Golden, CO (United States)]. 2026-07-01. Nanometer Scale Imaging to Develop Quantitative Descriptors of Bipolar Membrane Junction Structure. https://doi.org/10.1038/s41598-026-58863-7
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