Designer diffusion media microstructures enhance polymer electrolyte fuel cell performance

01 July 2025, Version 1
This content is a preprint and has not undergone peer review at the time of posting.

Abstract

Gas diffusion media are essential components in polymer electrolyte membrane fuel cells and a broad range of electrochemical technologies, enabling efficient mass transport of gas and liquid, electronic and thermal conductivity, and structural integrity under compression. Conventional diffusion media, typically made from carbon fiber substrates with microporous layers, have been extensively post-treated to enhance performance; however, these approaches offer limited control over three-dimensional microstructure, particularly for advanced architectures with bimodal or gradient porosity – which can facilitate multiphase gas and liquid mass transport – and often rely on complex, multi-step processes. These limitations underscore the need for scalable, cost-effective fabrication methods capable of producing much broader geometrical features. Here, we introduce a scalable, bottom-up fabrication method based on non-solvent induced phase separation (NIPS) to produce carbon-based diffusion media with finely tunable microstructures. By systematically varying processing parameters, we generate thin, mechanically robust diffusion media with tailored in-plane and through-plane porosity, including isoporous and bimodal structures. Using microscopy, porosimetry, and electrochemical diagnostics, we correlate microstructural features with single-cell fuel cell performance, revealing their impact on water management and gas transport. We further demonstrate post-treatment strategies to enhance mass transport properties and benchmark the cost and scalability of NIPS fabrication against conventional carbon fiber-based diffusion media via technoeconomic analysis. Our findings highlight the potential of NIPS as a versatile and industrially relevant pathway for next-generation diffusion media, offering new design freedoms to optimize fuel cell performance and reduce system-level costs.

Keywords

porous media
phase separation
fuel cells
mass transport
electrochemical energy conversion
gas diffusion layers

Supplementary materials

Title
Description
Actions
Title
Supplementary Information
Description
S1 Commercial CCM cross-section S2 NIPS and VIPS process overview S3 Fuel cell hardware S4 Skin layer NIPS SE S5 FH15C14 EDX PTFE distribution S6 NIPS EDX PTFE distribution S7 Additional XPS data S8 Through-plane conductivity S9 Residuals of the DRT measurements S10 Capillary flow porometry S11 H2/N2 impedance spectra for proton conductivity
Actions
Title
Techno-economics roll-to-sheet model
Description
Technoeconomic excel sheet including pricing, calculations for both the material production costs and its impact on power costs.
Actions

Comments

Comments are not moderated before they are posted, but they can be removed by the site moderators if they are found to be in contravention of our Commenting Policy [opens in a new tab] - please read this policy before you post. Comments should be used for scholarly discussion of the content in question. You can find more information about how to use the commenting feature here [opens in a new tab] .
This site is protected by reCAPTCHA and the Google Privacy Policy [opens in a new tab] and Terms of Service [opens in a new tab] apply.