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April 18, 2026Chemistry of Materials2 citations

Electron-Withdrawing Ligands Regulated the Reconstruction of Metal–Organic Frameworks via Enhanced π–π Stacking for Water Oxidation

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WLWeiwei LiuSLShiqi LiXCXun Chen

Key Points

  • The research aims to develop alkaline-stable metal-organic frameworks that enhance the efficiency of the oxygen evolution reaction.
  • Developed an electron-withdrawing ligand strategy for NiFe-MOFs.
  • Synthesized NiFe-BDC-BDC(F)4 nanosheet array for use as an anode.
  • Measured electrocatalytic activity through current density and voltage decay experiments.
  • Conducted both experimental and theoretical analyses to understand structural changes.
  • Achieved an overpotential of 245 mV at 100 mA cm–2 during oxygen evolution reaction.
  • Catalyst delivered a current density of 500 mA cm–2 at 1.65 V in anion exchange membrane water electrolysis.
  • Demonstrated a 75% reduction in voltage decay rate during continuous operation compared to the pristine anode.

Abstract

Developing alkaline-stable metal–organic framework (MOF) precatalysts is a significant challenge for the oxygen evolution reaction (OER) in anion exchange membrane water electrolysis (AEM-WE) due to their structural reconstruction and ligand leaching. Herein, we report an electron-withdrawing ligand strategy to modulate the electrocatalytic behavior of NiFe-MOFs. The as-prepared fluorinated NiFe-BDC-BDC(F)4 nanosheet array directly serves as an anode, which demonstrates outstanding OER activity with an overpotential of 245 mV at 100 mA cm–2. When integrated into an AEM-WE, the catalyst delivers an industrial current density of 500 mA cm–2 at 1.65 V. Crucially, the NiFe-BDC-BDC(F)4 anode demonstrates a 75% reduction in the voltage decay rate compared to its pristine counterpart during continuous operation. Experimental and theoretical analyses reveal that the electron-withdrawing ligands enhance π–π stacking, which effectively suppresses excessive structural transformation and leads to the formation of a hybrid active phase (NiFeOOH/NiFe-BDC-BDC(F)4) with preserved proton transfer pathways. This work not only provides mechanistic guidance for designing stable MOF-based precatalysts but also demonstrates a practical strategy with balanced activity and durability for industrial water electrolysis.

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Cite This Study

Liu et al. (2026) studied this question.

synapsesocial.com/papers/69e3209340886becb653fb87https://doi.org/10.1021/acs.chemmater.6c00302
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