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April 3, 2026ACS Sustainable Chemistry & Engineering0 citations

NiFe-Layered Double Hydroxides Nanosheets Coordinated with Terephthalic Acid: Preferentially Adsorbing OH – but Repelling Cl – during Alkaline Seawater Oxidation

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LCLuna ChenFMFei MaSYShiqi Yin

Key Points

  • This research investigates the enhancement of oxygen evolution reaction (OER) performance of NiFe-LDH using terephthalic acid for seawater electrolysis.
  • In situ growth of NiFe-LDH on Ni foam, coordinated with terephthalic acid.
  • Characterization of modified NiFe-LDH for structural and stability analysis.
  • Comparative performance evaluation of TPA-NiFe-LDH/NF and NiFe-LDH/NF in various electrolytes.
  • Assessment of long-term stability and current density in an anionic exchange membrane electrolyzer.
  • TPA-NiFe-LDH/NF shows lower overpotentials than NiFe-LDH/NF in alkaline electrolytes.
  • Significant enhancement in long-term stability with stable operation for 560 hours at 400 mA cm–2.
  • Achieves a current density of 500 mA cm–2 at 1.65 V with robust durability in alkaline simulated seawater.

Abstract

When NiFe-LDH is used as an oxygen evolution reaction (OER) catalyst for alkaline seawater electrolysis, the performance still suffers from slow catalytic kinetics and poor long-term stability. Inspired by the hard–soft-acid–base concept, herein, terephthalic acid (TPA) molecules are anchored on the surface of a NiFe-layered double hydroxide in situ grown on Ni foam (TPA-NiFe-LDH/NF) through coordination bonds, thus creating harder acidic Ni and Fe sites, preferentially adsorbing hard base OH– over soft base Cl–. Comprehensive characterizations indicate that the C–O–M bonds through metal-carboxylate coordination can stabilize the metal centers, suppress the metal dissolution, and accelerate catalytic OER kinetics. As a result, the modified sample demonstrates improved OER performance. Specifically, TPA-NiFe-LDH/NF exhibits lower overpotentials than NiFe-LDH/NF in the electrolytes of 1 M KOH, 1 M KOH + 0.5 M NaCl, and 1 M KOH + seawater. TPA-NiFe-LDH/NF also possesses much better long-term stability with stable operation even in alkaline seawater at 400 mA cm–2 for 560 h than NiFe-LDH/NF (less than 60 h). The anion exchange membrane electrolyzer of (+)TPA-NiFe-LDH/NF||MoNiP(−) delivers a high current density of 500 mA cm–2 at a cell voltage of 1.65 V for industrial alkaline simulated seawater splitting (6 M KOH + 0.5 M NaCl at 80 °C) and robust durability with stable operation over 110 h at 250 mA cm–2 for alkaline simulated seawater splitting (1 M KOH + 0.5 M NaCl at 25 °C). This study offers a new strategy to fabricate high-performance electrocatalysts for seawater oxidation.

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Cite This Study

Chen et al. (2026) studied this question.

synapsesocial.com/papers/69cf5de95a333a821460be71https://doi.org/10.1021/acssuschemeng.5c14240
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