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October 19, 2025Science53 citations

Durable, pure water–fed, anion-exchange membrane electrolyzers through interphase engineering

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SHShujin HouASArchana SekarYZYang Zhao

Key Points

  • Durability of pure water-fed AEMWEs improved by >20-fold, achieving a degradation rate of <0.5 millivolt per hour.
  • Mechanical integrity and hydroxide conductivity maintained through effective cross-linking of ionomers with inorganic additives.
  • Interphase engineering enables operation without supporting electrolytes, allowing adaptation of diverse catalysts.
  • Results indicate a pathway for scalable, low-cost hydrogen production through enhancing the electrochemical stability of AEMWEs.

Abstract

Anion-exchange membrane water electrolyzers (AEMWEs) promise scalable, low-cost hydrogen production but are limited by the electrochemical instability of their anode ionomers. We report interphase engineering using inorganic-containing molecular additives that coassemble with ionomer, enabling pure water–fed AEMWEs to operate with a degradation rate 20-fold durability improvement. Analysis of different additives and ionomers shows that the stabilization mechanism involves cross-links between metal oxo/hydroxo oligomers and ionomers. Under operation, the inorganic additive enriches, forming an interphase near the water-oxidation catalyst that passivates the anode ionomer against continuous degradation while maintaining mechanical integrity and hydroxide conductivity. This additive-based interphase-engineering strategy provides a path to durable AEMWEs that operate without supporting electrolytes and is adaptable across diverse catalysts and ionomers for electrochemical technologies.

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Cite This Study

Hou et al. (2025) studied this question.

synapsesocial.com/papers/68f43ef4854d1061a58abc18https://doi.org/10.1126/science.adw7100
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