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August 21, 2025Nature Chemistry33 citationsOpen Access

Magnetically induced convection enhances water electrolysis in microgravity

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ÖAÖmer AkayMMMacià Monfort-CastilloTFT. P. Francis

Key Points

  • Magnetic convection significantly enhances water electrolysis efficiency, achieving up to 240% improvement.
  • The study demonstrates improved gas bubble detachment in microgravity using a neodymium magnet for enhanced electrolysis.
  • Model magnetoelectrolytic cells were developed to achieve near-terrestrial efficiencies in producing oxygen and hydrogen.
  • These findings suggest lightweight, low-maintenance technologies that could support future human spaceflight missions.

Abstract

Since the early days of space exploration, the efficient production of oxygen and hydrogen via water electrolysis has been a central task for regenerative life-support systems. Water electrolysers are, however, challenged by the near-absence of buoyancy in microgravity, resulting in hindered gas bubble detachment from electrodes and diminished electrolysis efficiencies. Here we show that a commercial neodymium magnet enhances water electrolysis with current density improvements of up to 240% in microgravity by exploiting the magnetic polarization of the electrolyte and the magnetohydrodynamic force. We demonstrate that these interactions enhance gas bubble detachment and displacement through magnetic convection and achieve passive gas-liquid phase separation. Two model magnetoelectrolytic cells, a proton-exchange membrane electrolyser and a magnetohydrodynamic drive, were designed to leverage these forces and produce oxygen and hydrogen at near-terrestrial efficiencies in microgravity. Overall, this work highlights achievable, lightweight, low-maintenance and energy-efficient phase separation and electrolyser technologies to support future human spaceflight architectures.

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Cite This Study

Akay et al. (2025) studied this question.

synapsesocial.com/papers/68a6fb9b5502675167ba959fhttps://doi.org/10.1038/s41557-025-01890-0
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