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Updated: Sep 23, 2026

Measuring Proton Conductivity in MOF-Based Mixed Matrix Membranes by Electrochemical Impedance Spectroscopy
Published on: June 16, 2026
Cobalt (II) Coordination-Tailored Composite Proton Exchange Membrane with Enhanced Proton Conductivity and Suppressed
Suman Sarkar1,2, Apu Saha3, Sk Miraz Hossain1,2
1CSIR-Central Salt and Marine Chemicals Research Institute , Bhavnagar, Gujarat364002, India.
Abstract:
Balancing high proton conductivity with low hydrogen permeability remains a central challenge in the development of advanced proton exchange membranes (PEMs) for fuel cell applications. Herein, we report a Co(II)-coordination-engineered composite membrane based on Aquivion, in which lattice H2O and NO3- anions coordinated to Co(II) centers of a superprotonic coordination polymer (PCM-2) dynamically interact with humidified water and sulfonic acid (-SO3H) groups of Aquivion to establish an extended hydrogen-bonding network. This coordination-induced architecture facilitates efficient proton transport while simultaneously reinforcing the polymer matrix, thereby suppressing hydrogen crossover. The optimized membrane (AQV-2, 2 wt % PCM-2 in Aquivion) exhibits a high proton conductivity of 18.6 mS cm-1, representing a 61.04% enhancement over the pristine membrane (AQV-0, 11.55 mS cm-1), along with significantly reduced gas permeability. Structural integration of the one-dimensional PCM-2 framework further improves microphase-separated water domains and mechanical robustness. When evaluated in a hydrogen-oxygen fuel cell, AQV-2 delivers a superior peak power density of 643.2 mW cm-2 and a current density of 880.8 mA cm-2 at 0.6 V, outperforming the benchmark Nafion membrane with enhanced operational stability. These results highlight that Co(II)-mediated coordination within short-side-chain ionomers is an effective strategy to concurrently enhance proton transport and gas barrier properties, offering a promising pathway for next-generation high-performance PEMs.
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