Chinese Journal of Catalysis ›› 2026, Vol. 86: 290-301.DOI: 10.1016/S1872-2067(26)65070-X

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Interfacial charge manipulation enhancing H-bond connectivity for promoted oxygen evolution

Jun Kea, Jiaxi Zhangb,*(), Longhai Zhanga, Chengzhi Zhonga, Huiyu Songa, Li Dua, Yuwei Zhangb, Zhiming Cuia,*()   

  1. a Guangdong Provincial Key Laboratory of Fuel Cell Technology, School of Chemistry and Chemical Engineering, South China University of Technology Guangzhou 510641, Guangdong, China
    b School of Chemistry, South China Normal University, Guangzhou 510006, Guangdong, China
  • Received:2026-01-12 Accepted:2026-03-10 Online:2026-07-18 Published:2026-06-12
  • Contact: *E-mail: jxzhang@scnu.edu.cn (J. Zhang), zmcui@scut.edu.cn (Z. Cui).
  • Supported by:
    National Natural Science Foundation of China(22572062);National Natural Science Foundation of China(22302071);National Natural Science Foundation of China(22372062);Guangdong Provincial Department of Science and Technology(2024A1515240043);Young Talent Support Project of Guangzhou Association for Science and Technology(QT-2025-009)

Abstract:

Interfacial hydrogen bond connectivity (HBC) of electrical double layer (EDL) has been identified as a critical factor for many electrocatalytic reactions, However, there is a lack of systematic investigation on the correlation between HBC and oxygen evolution reaction (OER) kinetics, and the advanced strategies to rationally manipulate HBC. Herein, we proposed an interfacial charge manipulation (ICM) methodology to engineer HBC and enhance OER kinetic of various electrocatalysts including Ni3FeN and the benchmark oxides (RuO2, Ni(OH)2, Co(OH)2, FeNi LDH, and FeCo LDH). With Ni3FeN as a model catalyst, we systematically studied the influence of different anion chemisorption (NO3-, SO42-, and PO43-) on HBC and establishing a positive correlation between OER activity and the charge of anions. Electrochemical tests show that the modified Ni3FeN catalysts with NO3-, SO42-, and PO43- exhibit 1.1-, 1.4-, and 2.3-fold activity enhancements at 1.5-1.6 V vs. RHE relative to the raw Ni3FeN, respectively. The in-situ spectroscopy and AIMD reveal that high anion charges increase four-hydrogen-bonded water populations, strengthening HBC to promote proton transfer across the EDL during deprotonations step and lower energy obstacle of the rate-determining step. This work has offered a new paradigm to regulate the interfacial HBC at molecular scale for promoting OER.

Key words: Oxygen evolution reaction, Electrical double layer, Interfacial charge manipulation, Hydrogen bond connectivity, Ni3FeN, Anions