- Research Article
- 10.1149/ma2025-02483607mtgabs
Innovative Strategies for Freeze/Thaw Cycles on PEMFC Fuel Cells: Understanding Degradation Mechanisms and Multi-Scale Modeling of Aging
- Nov 24, 2025
- Electrochemical Society Meeting Abstracts
- Florence Dubelley + 11 more +11
Freezing conditions pose a major challenge for Proton Exchange Membrane Fuel Cells (PEMFCs), particularly in automotive applications where fast, energy-efficient start-up is essential. Two critical issues arise: (i) internal mechanical degradation of the cells, induced by freeze/thaw cycling, and (ii) the difficulty of cold starting, which directly affects the durability and performance of the system. Ice formation in bipolar plates and catalytic layers leads to delamination and accelerated degradation of the membrane-electrode assembly (MEA), significantly reducing its lifespan [1]. Recent studies report a 2.4% loss in performance after only 3,000 freeze/thaw cycles [2], highlighting the urgent need to develop optimized cold start strategies that minimize energy costs, start-up time, and component degradation [3].To address these challenges, the PEPR Durasys PAC project proposes a collaborative approach aimed at providing concrete solutions. Within this framework, LEPMI and CEA have developed a methodology combining advanced experimentation and modeling to identify key drivers to improve and to validate robust strategies. In this article, we present more specifically the experimental results obtained, as well as the protocols implemented to characterize the degradation mechanisms under freeze/thaw cycles.Initial tests to investigate the impact of freeze/thaw cycles on PEMFCs are performed between - 20°C and +10°C. The freeze/thaw cycles (out of operation of the fuel cell) are repeated few hundred times. Electrochemical characterizations (during operation) are carried out after the break-in phase and during cycling to monitor any changes in performance: electrochemically active platinum surface area degradation, ionic resistance and mass transport increase thanks to polarization curve, Cycling Voltammetry and impedance spectroscopy measurements. High humidity conditions of 95/95RH are used to submerge the cell and exacerbate potential damage related to freezing/thawing. As shown in Figure 1, no significant cell performance degradation is observed after two hundred cycles. Freeze/thaw cycles are ongoing to go further in the aging study. Nevertheless, this unexpected result does not rule out the possibility of microstructural changes within the MEA and its components. In order to identify and characterize these potential degradations, post-mortem morphological analyses of MEAs are planned, targeting in particular interface delamination, membrane ruptures, and electrode alterations. In addition, an in-depth study of materials and interfaces is underway to elucidate the underlying mechanisms. A dedicated experimental platform will enable passive hydrothermal cycles (without active gases) to be carried out, both ex-situ and in-situ, in order to stress the components and MEAs. Physicochemical and morphological characterizations, such as X-ray microtomography and interface analysis, will be used to identify failures at the micrometric (delamination) and nanometric (electrode alteration) scales. In addition, the development of peeling methods will enable the quantification and characterization of interface properties. Finally, the properties of the materials, depending on temperature, relative humidity, and number of cycles, will be compared between MEAs aged under real-world and laboratory conditions.
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