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Materials Engineering for High Performance and Durability Proton Exchange Membrane Water Electrolyzers

Pablo A. Garcia-Salaberri, Lonneke van Eijk, William Bangay, Kara J. Ferner, Mee H. Ha, Michael Moore, Ivan Perea, Ahmet Kusoglu, Marc Secanell, Prodip K. Das, Nausir Firas, Svitlana Pylypenko, Melissa Novy, Michael Yandrasits, Suvash C. Saha, Ali Bayat, Shawn Litster, Iryna V. Zenyuk

Research output: Contribution to journalReview articlepeer-review

Abstract

Proton exchange membrane water electrolyzers (PEMWEs) are expected to play a crucial role in the global green energy transition during the 21st century. They provide a versatile and sustainable solution for generating hydrogen with very high purity in combination with renewable energies, such as solar and wind. Despite their promise, PEMWEs face several critical problems, including high costs, performance limitations, and durability challenges, particularly at low iridium (Ir) loading on the anode. Advancing next-generation PEMWEs requires extensive work on materials engineering of all cell components, including the catalyst layer (CL), membrane, porous transport layer (PTL), bipolar plate (BPP), and gasket. This task must be performed with the complementary contribution of different modeling and characterization techniques. This review presents a critical perspective from academia, research centers, and industry, mapping main developments, remaining gaps, and strategic pathways to advance PEMWE technology. A focus is devoted to key aspects, such as operation at low Ir loading, membrane durability, multiscale transport layers, porous and non-porous flow fields, multiphysics modeling, and multipurpose characterization techniques, which are thoroughly discussed. By unifying these topics, this review provides readers with the essential knowledge to grasp current developments and tackle tomorrow’s challenges in PEMWE engineering.
Original languageEnglish
Pages (from-to)13050–13121
Number of pages72
JournalAcs Applied Energy Materials
Volume8
Issue number18
Early online date11 Sept 2025
DOIs
Publication statusPublished - 22 Sept 2025

Keywords / Materials (for Non-textual outputs)

  • Pemwe
  • Characterization
  • Design
  • Durability
  • Materials
  • Modeling
  • Performance

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