Proton Conducting Silicon Oxide Membranes as a Fluorine Free Alternative to Nafion for Low Temperature Water
Jingjing Jin1, Lucas A Cohen1, Sahand Adibnia1
1Columbia University in the City of New York, Department of Chemical Engineering, Columbia Electrochemical Energy Center, Lenfest Center for Sustainable Energy, New York, New York 10027, United States.
Abstract:
Driven by environmental and health concerns related to per- and polyfluoroalkyl substances (PFAS), there has been growing interest in developing fluorine-free proton (H+) exchange membrane (PEM) materials for fuel cells and water electrolyzers. In this study, we present a side-by-side comparison of the key transport properties of submicron thick, PFAS-free amorphous silicon dioxide (SiO2) membranes to Nafion, a fluorinated polymer electrolyte membrane that represents the industry standard for PEM fuel cells and electrolyzers. Measurements of proton (H+) conductivity (σH+), hydrogen (H2) permeability (PH2), and electrical resistivity (ρe-) were conducted using model thin films comprised of SiO2 membranes deposited by atomic layer deposition (ALD). Although the H+ conductivity of the SiO2 membranes is 2-3 orders of magnitude lower than Nafion, the addition of phosphorus dopants (POx) improves H+ conductivity such that the area specific membrane resistance of thin (<50 nm) POx-doped SiO2 membranes is more than an order of magnitude lower than Nafion-117. Importantly, the safe operation of such nanoscale membranes within a PEM electrolyzer is feasible thanks to the low H2 permeability of dense SiO2-based membranes, which are predicted to limit H2 crossover rates to acceptable levels for pressures up to ≈ 100 bar. As a proof-of-principle demonstration, a chip-scale water electrolyzer based on 100 nm thick POx-SiO2 membrane is shown to achieve a current density of 2 A cm-2 at a potential of 2.5 V. If this technology can be successfully scaled up, H+ conducting oxide membranes offer an attractive PFAS-free alternative to Nafion for efficient and durable water electrolysis and fuel cell technologies.
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