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March 13, 2026Advanced Science4 citationsOpen Access

Highly Robust Membrane Electrode Assembly Using Engineered Dual‐Phase Iridium Oxide Catalysts Breaking the Activity–Durability Trade‐Off in Proton Exchange Membrane Water Electrolysis

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HYHeena YangSKSong Gyun KimRSRubin Shin

Key Points

  • The aim is to develop a robust membrane electrode assembly that overcomes the trade-off between activity and durability in PEM water electrolysis.
  • Synthesized hollow dual-phase iridium oxide (HDP-IrOₓ) catalysts using polydopamine-coated polystyrene templates.
  • Tuned amorphous-crystalline ratios through precise calcination temperature adjustments.
  • Controlled shell architecture via varying template diameters (190, 240, and 360 nm).
  • HDP-IrOₓ-240 achieved a low overpotential of 283 mV at 10 mA cm⁻² during half-cell tests.
  • HDP-IrOₓ-360 demonstrated a voltage of 1.77 V at 2 A cm⁻² in single-cell operations with a stability decay rate of 31.5 µV h⁻¹ over 1036 hours.
  • Cooperative interactions between amorphous and crystalline phases enhanced charge transport and structural integrity.

Abstract

Proton exchange membrane water electrolysis (PEMWE) is a compelling route for sustainable green hydrogen production. Yet Ir-based oxygen evolution reaction (OER) catalysts suffer from a persistent trade-off between activity and stability under acidic conditions. Amorphous IrOx displays high intrinsic activity but limited structural resilience, whereas crystalline IrO2 affords robustness at the expense of accessible active sites. Reconciling these conflicting properties through rational structural design remains a significant challenge. This study presents a hollow dual-phase iridium oxide (HDP-IrOx) catalyst comprising coexisting amorphous and crystalline domains, synthesized via polydopamine-coated polystyrene-sphere hard templates. Calcination temperature precisely tunes the amorphous-crystalline ratios, while template diameter (190, 240, and 360 nm) controls shell architecture and the extent of amorphous domain formation. The optimized HDP-IrOx-240 exhibits a low overpotential of 283 mV at 10 mA cm-2 in half-cell evaluation, and HDP-IrOx-360 achieves 1.77 V at 2 A cm-2 in single-cell operation with remarkable stability (31.5 µV h-1 decay rate) over 1036 h. Cooperative amorphous-crystalline interactions ensure efficient charge transport while maintaining structural integrity. Dual-phase engineering thereby establishes an intrinsic design paradigm that reconciles activity and durability. This approach advances next-generation PEMWE anodes with low Ir loading.

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Cite This Study

Yang et al. (2026) studied this question.

synapsesocial.com/papers/69b3ab4c02a1e69014ccc07dhttps://doi.org/10.1002/advs.202524243
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