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September 18, 2024Advanced Materials127 citations

Stable Seawater Electrolysis Over 10 000 H via Chemical Fixation of Sulfate on NiFeBa‐LDH

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HCHaocheng ChenChinese Academy of SciencesPLPingying LiuFujian Normal UniversityWLWenbo LiQingdao University of Science and Technology

Key Points

  • Stability over 10,000 hours was achieved at 400 mA cm−2 for the catalyst in seawater.
  • The study indicates that the atomically dispersed Ba2+ allows for effective sulfate chemical fixation.
  • The research utilized a novel catalyst design that enhances durability against seawater's corrosive nature.
  • Findings suggest that this catalyst can facilitate the wider adoption of seawater electrolysis technologies.

Abstract

Abstract Although hydrogen production through seawater electrolysis combined with offshore renewable energy can significantly reduce the cost, the corrosive anions in seawater strictly limit the commercialization of direct seawater electrolysis technology. Here, it is discovered that electrolytic anode can be uniformly protected in a seawater environment by constructing NiFeBa‐LDH catalyst assisted with additional SO 4 2− in the electrolyte. In experiments, the NiFeBa‐LDH achieves unprecedented stability over 10 000 h at 400 mA cm −2 in both alkaline saline electrolyte and alkaline seawater. Characterizations and simulations reveal that the atomically dispersed Ba 2+ enables the chemical fixation of free SO 4 2− on the surface, which generates a dense SO 4 2− layer to repel Cl − along with the preferentially adsorbed SO 4 2− in the presence of an applied electric field. In terms of the simplicity and effectiveness of catalyst design, it is confident that it can be a beacon for the commercialization of seawater electrolysis technology.

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Cite This Study

Chen et al. (2024) studied this question.

synapsesocial.com/papers/68e580d4b6db64358751e858https://doi.org/10.1002/adma.202411302
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Controlled-Atmosphere Corrosion Engineering Toward NiFe-LDH Enabling High-Performance Alkaline Seawater Electrolysis with Long-Term Stability2026
  2. 2Simultaneous Surface and Interlayer Engineering of NiFe LDH via a Facile Anionic Surfactant Incorporation for Stable Ampere-Level Seawater Oxidation.2026 · 4 citations
  3. 3Electrolyte‐Mediated Selective Interfacial H‐Bond Network for Durable Seawater Electrolysis2026
  4. 4Selective Anion‐Gating Interlayer Enables Chloride‐Resistant and Long‐Life Alkaline Seawater Electrolysis2026
  5. 5Atomically Dispersed Mo–S Sites Boost NiFe–Layered Double Hydroxide for Industrial‐Level Seawater Electrolysis2026 · 2 citations