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February 6, 2026Nature Communications15 citationsOpen Access

Bubble dynamics matters at high-rate water electrolysis

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LWLizhen WuQWQing WangSYShu Yuan

Key Points

  • The study aims to understand how bubble dynamics influence water electrolysis performance at high current densities.
  • Analyzed bubble accumulation effects on anion exchange membrane water electrolyzers
  • Proposed a gradient stainless steel square hole mesh electrode design
  • Measured cell voltage changes at high current densities
  • Reduced cell voltage by 0.14 V at 5.0 A cm<sup>-2</sup>
  • Maintained stable operation over 400 hours
  • Improved bubble dynamics with a lower cost electrode compared to traditional designs

Abstract

Bubbles accumulation in the electrode limits anion exchange membrane water electrolyzer performance at industrial current densities (>1. 0 A cm-2). Currently, conventional electrode designs prioritize the optimization of the electrochemically active surface area. However, this study reveals that bubble dynamics matters high-rate water electrolysis efficiency in anode-feeding mode in three ways: 1) cover active sites at the anode; 2) hinder water diffusion through the membrane; 3) cause water shortage at the cathode. Based on this mechanism, we propose an easy-to-prepare gradient stainless steel square hole mesh electrode. It not only offers a low cost (8-150/m2), but also improves bubble dynamics. As a result, it reduces the cell voltage by 0. 14 V at a current density of 5. 0 A cm-2, even with a lower electrochemically active surface area compared to the stainless steel felt electrode. And it maintains a stable operation over 400 hours. This work redefines electrode engineering paradigms, shifting focus from electrochemically active surface area-centric approaches to two-phase flow management in water electrolyzers for industrial current densities-scale hydrogen production.

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Cite This Study

Wu et al. (2026) studied this question.

synapsesocial.com/papers/698584f98f7c464f230084b0https://doi.org/10.1038/s41467-026-69052-5
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