Electrode Degradation in Proton Exchange Membrane Fuel Cells
Doktorsavhandling, 2025
Accelerated stress test
Intermediate temperature operation
Membrane electrode assembly
Electrochemical quartz crystal microbalance
Platinum stability
Fuel cells
Catalyst degradation
Identical location electron microscopy
Författare
Linnéa Strandberg
Chalmers, Fysik, Kemisk fysik
Impact of Accelerated Stress Tests on the Cathodic Catalytic Layer in a Proton Exchange Membrane (PEM) Fuel Cell Studied by Identical Location Scanning Electron Microscopy
ACS Applied Energy Materials,;Vol. 5(2022)p. 11200-11212
Artikel i vetenskaplig tidskrift
Comparison of Oxygen Adsorption and Platinum Dissolution in Acid and Alkaline Solutions Using Electrochemical Quartz Crystal Microbalance
ChemElectroChem,;Vol. 9(2022)
Artikel i vetenskaplig tidskrift
Fuel cell electrode degradation followed by identical location transmission electron microscopy
Journal of Materials Chemistry A,;Vol. 11(2023)p. 21029-21035
Artikel i vetenskaplig tidskrift
Carbon Support Corrosion in PEMFCs Followed by Identical Location Electron Microscopy
ACS Catalysis,;Vol. 14(2024)p. 8494-8504
Artikel i vetenskaplig tidskrift
Strandberg, L., Toth, G., Göransson, G., Skokhen, V., Wickman, B., PEMFC Catalyst Layer Degradation at Intermediate Temperatures (80, 100, and 120 °C)
Using electrochemical quartz crystal microbalance (EQCM), I explored Pt dissolution rates and mass response under potential cycling, and found that while the mass response differs between acid and alkaline solutions, the over-all dissolution rates are more dependent on potential limits. Additionally, I implemented identical location (IL) electron microscopy techniques in PEMFC environments to study Pt catalyst degradation under realistic operating conditions. By combining IL scanning electron microscopy (IL-SEM) and IL transmission electron microscopy (IL-TEM), I tracked degradation processes and compared them across different operational conditions. I also investigated the impact of intermediate operation temperatures (80–120 °C) on commercial membrane electrode assemblies (MEAs), where an increased temperature was found to correlate with greater performance losses and Pt particle growth. By shedding light on different modes of degradation and introducing new tools for analysis, this work advances our understanding of PEMFC durability, and supports the development of more robust, long-lasting fuel cells for a sustainable energy future.
Produktion, användning och lagring av vätgas (PUSH)
Stiftelsen för Strategisk forskning (SSF) (ARC19-0026), 2020-08-01 -- 2025-12-31.
The Competence Centre for Catalysis, KCK 2022-2026
Scania AB (Dnr:2021-036543Pnr:52689-1), 2022-01-01 -- 2026-12-31.
Umicore Denmark ApS (KCK2022-2026), 2022-01-01 -- 2026-12-31.
Preem AB (KCK2022-2026), 2022-01-01 -- 2026-12-31.
Volvo Group (PO:2435702-000), 2022-01-01 -- 2026-12-31.
Johnson Matthey (2500123383), 2022-01-01 -- 2026-12-31.
Drivkrafter
Hållbar utveckling
Styrkeområden
Nanovetenskap och nanoteknik
Energi
Materialvetenskap
Ämneskategorier (SSIF 2025)
Nanoteknik
Fysik
Infrastruktur
Chalmers materialanalyslaboratorium
Myfab (inkl. Nanotekniklaboratoriet)
ISBN
978-91-8103-190-4
Doktorsavhandlingar vid Chalmers tekniska högskola. Ny serie: 5648
Utgivare
Chalmers
Kollektorn, Kemivägen 9
Opponent: Marian Chatenet, LEPMI Grenoble, France