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December 12, 2025Nature Communications12 citationsOpen Access

Supersolidophobic Pt catalyst for long-term natural seawater electrolysis with hydrogen production and magnesium extraction

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YLYi LiCCChaohao ChenYWYingjie Wen

Key Points

  • The study aims to improve the seawater electrolysis process for hydrogen production and magnesium extraction using a Pt catalyst.
  • Utilized a Pt catalyst with surface-coordinated halogens in natural seawater electrolysis.
  • Evaluated the scaling effects and electrode stability over 5000 hours.
  • Conducted both experimental and theoretical studies to understand catalyst behavior.
  • Achieved over 99% purity in Mg(OH)2 extraction using the Pt catalyst.
  • Successfully produced hydrogen at rates under 100 mA cm-2 for extended periods.
  • Demonstrated scalability through techno-economic analysis and life cycle assessment.

Abstract

The electrochemical synthesis of solid compounds is a critical emerging area in electrocatalysis; however, a major challenge is still remaining on severe catalysts scaling driven by strong solid-solid interactions, giving rise to rapid electrode deactivation. In this study, for the example of simultaneous synthesis of Mg(OH)2 and H2 from natural seawater electrolysis, we demonstrate that Pt catalyst with surface-coordinated halogens (F, Cl, Br, I) can alleviate this scaling effect (i.e., solidophobicity) by like-charge repulsion and thus regulating the local environment. Specifically, Pt-I coordination results in supersolidophobicity, achieving a successful extraction of Mg(OH)2 ( > 99% purity) while stably producing H2 (under 100 mA cm-2 for over 5000 hours). A combination of experimental and theoretical studies reveals that, due to the like charge repulsion between I- and in situ generated OH-, the Pt-I catalyst regulates the surface pH gradient which increases the distance from the electrode surface to the Mg(OH)2 nucleus (>4 μm) and facilitates homogeneous nucleation. Additionally, the scalability of the Pt-I catalyst, along with the techno-economic analysis and life cycle assessment of the natural seawater electrolysis technology are systematically demonstrated.

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Cite This Study

Li et al. (2025) studied this question.

synapsesocial.com/papers/6941aae10f5af7fd17df5a7bhttps://doi.org/10.1038/s41467-025-66473-6
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