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April 24, 2026Angewandte Chemie International Edition4 citations

Boosting Alkaline Oxygen Evolution Kinetics by Tailoring the Noncovalent Interaction on CoOOH

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JZJuan ZhuNYNa YaoCJChaoyang Jiang

Key Points

  • The aim is to explore how noncovalent interactions affect oxygen evolution reaction kinetics at the catalyst-electrolyte interface.
  • Used cobalt oxyhydroxide as a model catalyst.
  • Employed carboxylate additives to modulate the electronic double layer.
  • Conducted various experimental techniques including RRDE measurements and in situ spectroscopies.
  • Hydrogen bonds between carboxylate anions and water molecules enhance OH- migration to the CoOOH surface.
  • Negative electrostatic potential from carboxylates destabilizes adsorbed intermediates, speeding up reactions.
  • Overall, optimization of noncovalent interactions significantly accelerates alkaline oxygen evolution kinetics.

Abstract

ABSTRACT Understanding the effect of noncovalent interactions of intermediates at the polarized catalyst‐electrolyte interface is key to improving the kinetics of electrocatalytic reactions. Herein, we employ cobalt oxyhydroxide (CoOOH) as a model catalyst, select carboxylate‐based additives to strategically modulate the interfacial electronic double layer (EDL), and investigate the effect of carboxylate anions on the oxygen evolution reaction (OER) kinetics under alkaline media. We demonstrate that the hydrogen bonds formed between oxygen atoms within ‐COO − fragments of carboxylate anions and interfacial H 2 O molecules can disrupt the arrangement of the hydration shell around K + , leading to fast migration of OH − to the CoOOH surface. Experimental results, including rotating ring‐disk electrode (RRDE) measurements, in situ X‐ray absorption spectroscopy (XAS), in situ attenuated total reflectance surface‐enhanced infrared absorption spectroscopy (ATR‐SEIRAS), and ab initio molecular dynamics (AIMD) theory simulations, reveal that the negative electrostatic potential on the oxygen atom in the ‐COO − fragments can partially neutralize the localized electric field generated by hydrated K + ions in the electrolyte, which sufficiently destabilizes the adsorbed oxygenated intermediates and accelerates the deprotonation process, thereby leading to promoted charge accumulation and accelerated alkaline OER kinetics.

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Cite This Study

Zhu et al. (2026) studied this question.

synapsesocial.com/papers/69eb092b553a5433e34b3bb1https://doi.org/10.1002/anie.8433540
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