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References
(Ref. 1) Healy, J.; Hayden, C.; Xie, T.; Olson, K.; Waldo, R.; Brundage, M.; Gasteiger, H.; Abbott, J. Aspects of the Chemical Degradation of PFSA Ionomers used in PEM Fuel Cells. Fuel Cells 2005, 5 (2), 302-308. DOI: 10.1002/fuce.200400050. (Ref. 2) Carlsson, A. H.; Joerissen, L. Accelerated Degradation of Perfluorinated Sulfonic Acid Membranes. ECS Trans. 2009, 25 (1), 725-732. DOI: 10.1149/1.3210624. (Ref. 3) Shin, S.-H.; Nur, P. J.; Kodir, A.; Kwak, D.-H.; Lee, H.; Shin, D.; Bae, B. Improving the Mechanical Durability of Short-Side-Chain Perfluorinated Polymer Electrolyte Membranes by Annealing and Physical Reinforcement. ACS omega 2019, 4 (21), 19153-19163. DOI: 10.1021/acsomega.9b02436. Published Online: Nov. 5, 2019. (Ref. 4) Aleksandrov, K.; Gehrmann, H.-J.; Hauser, M.; Mtzing, H.; Pigeon, D.; Stapf, D.; Wexler, M. Waste incineration of Polytetrafluoroethylene (PTFE) to evaluate potential formation of per- and Poly-Fluorinated Alkyl Substances (PFAS) in flue gas. Chemosphere 2019, 226, 898-906. DOI: 10.1016/j.chemosphere.2019.03.191. Published Online: Apr. 4, 2019. (Ref. 5) Xu, F.; Mu, S.; Pan, M. Recycling of membrane electrode assembly of PEMFC by acid processing. International Journal of Hydrogen Energy 2010, 35 (7), 2976-2979. DOI: 10.1016/j.ijhydene.2009.05.087. (Ref. 6) Carmo, M.; Keeley, G. P.; Holtz, D.; Grube, T.; Robinius, M.; Mller, M.; Stolten, D. PEM water electrolysis: Innovative approaches towards catalyst separation, recovery and recycling. International Journal of Hydrogen Energy 2019, 44 (7), 3450-3455. DOI: 10.1016/j.ijhydene.2018.12.030. (Ref. 7) Frankenstack. https://gtr.ukri.org/projects?ref=133704 and https://www.ukri.org/wpcontent/uploads/2022/01/UKRI-250122-SmartLocalEnergySystemsEnergyRevolutionTakesShape.pdf. (Ref. 8) BReCycle project. https://www.enargus.de/pub/bscw.cgi/?op=enargus.eps2&q=%2201206524/1%22. (Ref. 9) BEST4Hy project. https://cordis.europa.eu/project/id/101007216. (Ref. 10) Gubler, L.; Nauser, T.; Coms, F. D.; Lai, Y.-H.; Gittleman, C. S. Perspective--Prospects for Durable Hydrocarbon-Based Fuel Cell Membranes. J. Electrochem. Soc. 2018, 165 (6), F3100-F3103. DOI: 10.1149/2.0131806jes. (Ref. 11) Park, C. H.; Lee, C. H.; Guiver, M. D.; Lee, Y. M. Sulfonated hydrocarbon membranes for medium-temperature and low-humidity proton exchange membrane fuel cells (PEMFCs). Progress in Polymer Science 2011, 36 (11), 1443-1498. DOI: 10.1016/j.progpolymsci.2011.06.001. (Ref. 12) Shin, D. W.; Guiver, M. D.; Lee, Y. M. Hydrocarbon-Based Polymer Electrolyte Membranes: Importance of Morphology on Ion Transport and Membrane Stability. Chemical reviews 2017, 117 (6), 4759-4805. DOI: 10.1021/acs.chemrev.6b00586. Published Online: Mar. 3, 2017. (Ref. 13) Klose, C.; Saatkamp, T.; Mnchinger, A.; Bohn, L.; Titvinidze, G.; Breitwieser, M.; Kreuer, K.-D.; Vierrath, S. All-Hydrocarbon MEA for PEM Water Electrolysis Combining Low Hydrogen Crossover and High Efficiency. Adv. Energy Mater. 2020, 10 (14), 1903995. DOI: 10.1002/aenm.201903995. (Ref. 14) Lai, Y.-H.; Mittelsteadt, C. K.; Gittleman, C. S.; Dillard, D. A. Viscoelastic Stress Analysis of Constrained Proton Exchange Membranes Under Humidity Cycling. Journal of Fuel Cell Science and Technology 2009, 6 (2). DOI: 10.1115/1.2971045. (Ref. 15) Sadeghi Alavijeh, A.; Bhattacharya, S.; Thomas, O.; Chuy, C.; Yang, Y.; Zhang, H.; Kjeang, E. Effect of hygral swelling and shrinkage on mechanical durability of fuel cell membranes. Journal of Power Sources 2019, 427, 207-214. DOI: 10.1016/j.jpowsour.2019.04.081. (Ref. 16) ELECTROHYPEM. https://cordis.europa.eu/article/id/169730-hydrogen-from-improvedfuel-cells-coupled-with-renewables. (Ref. 17) GAIA. https://cordis.europa.eu/project/id/696029. (Ref. 18) IMMORTAL. https://cordis.europa.eu/project/id/101006641.
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(Ref. 19) Nguyen, H.; Klose, C.; Metzler, L.; Vierrath, S.; Breitwieser, M. Fully Hydrocarbon Membrane Electrode Assemblies for Proton Exchange Membrane Fuel Cells and Electrolyzers: An Engineering Perspective. Adv. Energy Mater. 2022, 12 (12), 2103559. DOI: 10.1002/aenm.202103559. (Ref. 20) Taehun Ha; Junhyun Cho; Jaeman Park; Kyoungdoug Min; Han-Sang Kim; Eunsook Lee; Jy-Young Jyoung. Experimental study of the effect of dissolution on the gas diffusion layer in polymer electrolyte membrane fuel cells. International Journal of Hydrogen Energy 2011 (36), 12427-12435. (Ref. 21) Yu, S.; Li, X.; Li, J.; Liu, S.; Lu, W.; Shao, Z.; Yi, B. Study on hydrophobicity degradation of gas diffusion layer in proton exchange membrane fuel cells. Energy Conversion and Management 2013, 76, 301-306. DOI: 10.1016/j.enconman.2013.07.034. (Ref. 22) Lee, F. C.; Ismail, M. S.; Ingham, D. B.; Hughes, K. J.; Ma, L.; Lyth, S. M.; Pourkashanian, M. Alternative architectures and materials for PEMFC gas diffusion layers: A review and outlook. Renewable and Sustainable Energy Reviews 2022, 166, 112640. DOI: 10.1016/j.rser.2022.112640. (Ref. 23) Fuel Cells and Hydrogen 2 Joint Undertaking. Hydrogen roadmap Europe - A sustainable pathway for the European energy transition, 2016.
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