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January 16, 2026Langmuir3 citations

Fe-Doped Nickel Sulfide-Engineered NiFe Layered Double Hydroxide Nanohybrids: Exceptional Oxygen Evolution Activity and Durability in Alkaline Freshwater and Simulated Seawater

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BZBo ZhengYZYue ZhouCLChunlei Li

Key Points

  • To develop low-cost and efficient electrocatalysts for oxygen evolution reactions in both freshwater and simulated seawater.
  • Designed and fabricated NiFe layered double hydroxide@Fe-doped nickel sulfide nanohybrids using a one-step hydrothermal method.
  • Utilized sodium thiosulfate as a precursor to produce both sulfide and modify the layered double hydroxide.
  • Assessed catalytic performance through overpotential measurements and stability tests under alkaline conditions.
  • Achieved low overpotentials of 191, 229, and 272 mV at 10, 100, and 500 mA cm-2 in freshwater, respectively.
  • Demonstrated stability for 530 hours at 500 mA cm-2.
  • Showed comparable performance in alkaline simulated seawater with overpotentials of 197, 240, and 306 mV at the same current densities.

Abstract

Developing low-cost, high-efficiency oxygen evolution reaction electrocatalysts is crucial for sustainable green hydrogen production via water electrolysis. Nonetheless, complex synthetic processes, low catalytic activity, and limited durability of catalysts pose significant challenges for industrial-scale applications, particularly in seawater electrolysis, where Cl--induced chlorine oxidation and electrode corrosion are prominent issues. In this work, we present a one-step hydrothermal method to fabricate NiFe layered double hydroxide@Fe-doped nickel sulfide nanohybrids on nickel foam (NiFe LDH@NixFe3-xS2/NF) using sodium thiosulfate as a dual-function precursor (decomposing to S2- for sulfide formation and SO42- for LDH modification). The optimal catalyst demonstrates exceptional OER performance in alkaline freshwater (1 M KOH) with overpotentials of 191, 229, and 272 mV to achieve 10, 100, and 500 mA cm-2, respectively, alongside a low Tafel slope of 34.5 mV dec-1, while maintaining stability for 530 h at 500 mA cm-2. In alkaline simulated seawater, it shows comparable activity (197/240/306 mV at the same current densities). Additionally, the self-assembled Pt/C/NF||NiFe LDH@NixFe3-xS2-2/NF couple delivers 10 mA cm-2 at 1.520 V for overall water splitting in an alkaline saline electrolyte. The enhanced performance is attributed to synergistic effects of hydroxide/sulfide nanointerfaces, low interfacial resistance, SO42--mediated Cl- repulsion/OOH* stabilization, and active β-NiOOH formation, underscoring its potential for practical seawater-based green hydrogen production.

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Cite This Study

Zheng et al. (2026) studied this question.

synapsesocial.com/papers/6969d518940543b97770a134https://doi.org/10.1021/acs.langmuir.5c05750
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