Chinese Journal of Catalysis ›› 2026, Vol. 85: 258-271.DOI: 10.1016/S1872-2067(26)65029-2

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O-bridged NiSe2/CQDs composite synergistically triggers interfacial electrons transfer to promote H2O2 electrosynthesis

Qianqian Xua, Haihong Zhongb(), Chunli Lia, Rong Jianga(), Yongjun Fenga,d(), Luis Alberto Estudillo-Wongc   

  1. a State Key Laboratory of Chemical Resource Engineering, College of Chemistry, Beijing University of Chemical Technology, Beijing 100029, China
    b School of Chemistry and Chemical Engineering, Collaborative Innovation Center of Ecological Civilization, Hainan University, Haikou 570228, Hainan, China
    c Departamento de Biociencias e Ingeniería, CIIEMAD-IPN, Instituto Politécnico Nacional, Ciudad de México C.P. 07340, Mexico
    d Quzhou Institute for Innovation in Resource Chemical Engineering, Quzhou, Zhejiang Province 324000, China
  • Received:2025-11-05 Accepted:2025-12-31 Online:2026-06-18 Published:2026-05-18
  • Contact: *E-mail: hzhong@hainanu.edu.cn (H. Zhong),
    hazeljr@buct.edu.cn (R. Jiang),
  • About author:

    Qianqian XU: Investigation, Methodology, Writing-original draft; Haihong ZHONG: Supervision, Conceptualization, Writing-review & editing; Chunli LI: Data analysis; Rong JIANG: Investigation; Writing-review & editing; Luis Alberto Estudillo-Wong: Data analysis; Yongjun FENG: Supervision, Resources, Writing-review & editing, Funding acquisition.

  • Supported by:
    National Natural Science Foundation of China(22494683);National Natural Science Foundation of China(22368020);Foreign expert project(H20240305);Research Foundation for Talented Scholars of Hainan University(KYQD(ZR)23055)

Abstract:

Modulating the electronic structure of electrocatalysts represents a widely employed strategy to enhance the oxygen reduction reaction (ORR) activity and H2O2 selectivity, yet achieving precise control over this process remains challenging. In this work, we introduce oxygen-doped carbon quantum dots (O-CQDs) into NiSe2 nanoparticles/nanosheets to regulate the electronic structure of Ni active sites. This optimization promotes favorable O2 adsorption and reduces the energy barrier for OOH formation, thereby significantly boosting the electrocatalytic production of H2O2 via the two-electron (2e-) ORR pathway. Combined spectroscopic analysis and density functional theory calculations reveal that the O-bridged interface facilitates electron transfer to surface Ni sites, strengthening O2 adsorption in an "end-on" configuration and favoring the 2e- ORR mechanism. The resulting O-bridged NiSe2/CQDs catalyst exhibits outstanding 2e- ORR performance under alkaline conditions, achieving a high H2O2 production rate of 7458.24 mmol gcat-1 h-1 at 31.25 mA cm-2 and a Faradaic efficiency of 92.88% at 0.5 V. The efficient degradation of the Rhodamine B and Methylene Blue is achieved by utilizing the electrolyte obtained after the H2O2 electrosynthesis process as a Fenton reagent. This study demonstrates that rational tailoring of interfacial charge distribution in hybrid catalysts provides an effective strategy for enhancing catalytic performance, offering a promising design principle for advanced electrocatalysts.

Key words: Two-electron oxygen reduction reaction, Nickel selenides, Oxygen-doped carbon quantum dots, Hydrogen peroxide production, Electronic structure