Crystal lattice distortion in Se-doped CoMoO4 inducing highly active γ-CoOOH species for efficient water oxidation

Xueran Shen, Xiangyu Chen, Haibo Jin, Yuefeng Su, Ning Li, Jingbo Li, Zhiyong Xiong, Caihong Feng*, Jianxin Kang*, Lin Guo

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

The self-reconstructed cobalt oxyhydroxides (CoOOH) evolved from pre-catalysts generally possess larger specific surface area and more active sites than the direct synthesized one, always showing better oxygen evolution reaction (OER) activity. However, subject to the spontaneous rearrangement of atoms, the reconstructed CoOOH typically exhibits β polymorphs, rather than γ-CoOOH with higher OER activity. Herein, a new strategy to affirmatively obtain γ-CoOOH is established through adjusting the phase transformation mechanism of CoMoO4 by controllably doping Se atoms. The interstitial Se atoms in Se-CoMoO4 introduce tensile strain and form high-spin state Co2+, creating the favorable lattice environment that inspires CoMoO4 to reconstruct into γ-CoOOH rather than β-CoOOH. The reconstructed γ-CoOOH from Se-CoMoO4 exhibits excellent OER activity, which is verified by a low overpotential of 332 mV at 1000 mA cm−2, low Tafel slope (78.24 mV dec−1) and long-term stability (over 200 h) in 1 M KOH electrolytes. This work offers a constructive idea to achieve the formations of high active phase, and can provide inspiration for the design of efficient catalysts with high performance.

Original languageEnglish
Article number125592
JournalApplied Catalysis B: Environmental
Volume378
DOIs
Publication statusPublished - 5 Dec 2025

Keywords

  • High spin
  • Lattice distortion
  • Oxygen evolution reaction
  • Strain
  • Structural reconstruction

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