(542e) The Parameter Space for Scalable Integration of Atomically Thin Graphene with Nafion for Proton Exchange Membrane (PEM) Applications
AIChE Annual Meeting
2024
2024 AIChE Annual Meeting
Materials Engineering and Sciences Division
Charged and Ion-Containing Polymers III: Membranes and Other Applications
Wednesday, October 30, 2024 - 1:30pm to 1:45pm
Selective proton permeation through atomically thin graphene while maintaining impermeability to even small gas atoms i.e. He or hydrated ions, presents potential for advancing proton exchange membranes (PEMs) across a range of energy conversion and storage applications. The incorporation of graphene into state-of-the-art proton conducting polymers e.g. Nafion can enable improvements in PEM selectivity as well as mitigate reactant crossover. The development of facile integration approaches are hence imperative. Here, we systematically study the parameters influencing the integration of monolayer graphene synthesized via scalable chemical vapor deposition (CVD) on polycrystalline Cu foils with a model proton conducting polymer (Nafion) via a facile hot-press process. The hot-press time (t), temperature (T) and pressure (P) are found to not only influence the quality of graphene transfer but can also introduce additional defects in the CVD graphene. Graphene transfers to Nafion performed below the optimum temperature (Topt â¼ 115 °C) remain patchy with ruptures, while transfers above Topt showed defect features, and transfers near Topt show minimal ruptures and defect features. We demonstrate Nafion|graphene|Nafion sandwich membranes using the optimal transfer conditions that allow for â¼50% reduction in hydrogen crossover (â¼0.17 mA cmâ2) in comparison to Nafion control membranes (â¼0.33 mA cmâ2) while maintaining comparable proton area specific resistance < 0.25 Ω cm2 (areal conductance â¼ 4â5 S cmâ2), that are adequate to enable practical PEM applications such as fuel cells, redox flow batteries, and beyond.
Reference: Chaturvedi P., Moehring N.K., Knight T., Shah R., Vlassiouk I., Kidambi P.R., âThe Parameter Space for Scalable Integration of Atomically thin Graphene with Nafion for Proton Exchange Membrane (PEM) Applicationsâ Materials Advances (2023) DOI: 10.1039/d3ma00180f