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April 3, 2026ACS Applied Materials & Interfaces5 citationsOpen Access

Impact of Porous Transport Layer Morphology on the Performance of Proton Exchange Membrane Water Electrolyzers with Ultra-Low Iridium Loadings

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JWJacob A. WrubelMPMakenzie ParimuhaSBSarah J. Blair

Key Points

  • To assess the effects of porous transport layer morphology on the performance of proton exchange membrane water electrolyzers with low iridium loadings.
  • Surveyed eight porous transport layers from different manufacturers
  • Characterized PTLs based on porosity, particle size, and pore size
  • Evaluated electrochemical performance at 0.4 mg Ir cm-2 and 0.1 mg Ir cm-2
  • Conducted 1000-h durability tests
  • PTLs with lower porosities and smaller particle/pore sizes perform better at ultralow Ir loadings
  • Durability testing showed improved longevity with lower porosity PTLs
  • A runaway voltage phenomenon was noted at ultralow Ir loadings due to increased overpotentials
  • Short-term performance at 0.1 mg Ir cm-2 correlates with degradation rates at 0.4 mg Ir cm-2

Abstract

Reducing Ir loadings in proton exchange membrane water electrolyzer anodes is critical for lowering capital expenses. Loading reduction could be achieved by improving the Ir activity via doping/alloying and/or the development of advanced microstructures. However, the anode porous transport layer (PTL) is a comparatively simple component whose properties also impact Ir utilization. Therefore, well-designed PTLs may also enable reduced Ir loadings. In this work, we survey eight PTLs from various manufacturers to observe their impact on cell performance at low (0.4 mgIr cm-2) and ultralow (0.1 mgIr cm-2) Ir loadings. The PTLs were characterized by their microstructural properties, including porosity, particle size distribution, and pore size distribution. Electrochemical cell performance was correlated to PTL morphology, and it was found that PTLs with lower porosities and smaller particle and pore radii enabled good performance even at ultralow Ir loadings. 1000-h durability testing indicated that using lower porosity PTLs can significantly improve durability behavior. A runaway voltage phenomenon was observed during durability testing of cells with ultralow Ir loadings, which was caused by increases in both anode and cathode overpotentials. Furthermore, we observed that the beginning of test performance of 0.1 mgIr cm-2 cells correlates to the 1000-h degradation rates of 0.4 mgIr cm-2 cells, suggesting that for the Ir catalyst used in this work, short-term testing at ultralow loadings can be used as an indicator of long-term degradation at higher loadings.

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Cite This Study

Wrubel et al. (2026) studied this question.

synapsesocial.com/papers/69cf5fe05a333a821460e98bhttps://doi.org/10.1021/acsami.6c01544
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