Chinese Journal of Catalysis ›› 2026, Vol. 81: 344-354.DOI: 10.1016/S1872-2067(25)64858-3

• Article • Previous Articles     Next Articles

Charge-mediated cyclohexanone enrichment and intermediate stabilization at MoNi4/MoO2 heterostructures enable paired cyclohexanone electrooxidation-hydrogen production at ampere-level current

Rui Yanga, Zimin Hana, Yin Gaoa, Guoqing Fenga, Huaizhi Liua, Yiyin Huangb(), Zhongkai Wanga(), Yaobing Wangc()   

  1. a School of Materials and Chemistry, Anhui Agricultural University, Biomass Molecular Engineering Center, Engineering Research Center for High-Performance Fiber Products for Automobile of Anhui Province, Hefei 230036, Anhui, China
    b College of Physics and Energy, Fujian Normal University, Fujian Provincial Key Laboratory of Quantum Manipulation and New Energy Materials, Fuzhou 350117, Fujian, China
    c Key Laboratory of Design and Assembly of Functional Nanostructures, Fujian Provincial Key Laboratory of Nanomaterials, State Key Laboratory of Structural Chemistry, Key Laboratory of Optoelectronic Materials Chemistry and Physics, Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences, Fuzhou 350002, Fujian, China
  • Received:2025-08-25 Accepted:2025-09-02 Online:2026-02-18 Published:2025-12-26
  • Contact: *E-mail: wangyb@fjirsm.ac.cn (Y. Wang),wangzk6@ahau.edu.cn (Z. Wang),hyy@fjnu.edu.cn (Y. Huang).
  • Supported by:
    National Natural Science Foundation of China(22175036);Open and Innovation Fund of Hubei Three Gorges Laboratory(SK240007);Anhui Provincial Natural Science Foundation(2408085QE132);University Natural Science Research Project of Anhui Province(2024AH050435);Natural Science Foundation of Fujian Province(2022J01181)

Abstract:

Electrocatalytic oxidation of cyclohexanone (KOR) to adipic acid provides a sustainable and value-added pathway for coupled hydrogen evolution (HER). However, the weak adsorption of the reactants and intermediates leads to poor reaction kinetics and product yield. Herein, we synthesized MoNi4/MoO2 heterostructures via phase conversion to engineer a large work function difference that optimizes the Ni electronic structure. This design enhances cyclohexanone adsorption and regulates intermediates, achieving 85% Faradaic efficiency for production of adipic acid and a 2 mmol h-1 cm-2 production rate, along with an ampere-level current. In a membrane electrode assembly electrolyzer for KOR-assisted HER, this catalyst displays 1 A current with 12.1 mol adipic acid production and 3.34 L H2 generation over 8 h, maintaining stability for 56 h at 3 A. Optimized Ni electronic structure achieved through heterojunction-induced charge redistribution strengthens cyclohexanone adsorption and lowers the energy barriers for key intermediates (C6H10O2* and C6H10O3*), boosting oxidation activity. This study presents a novel heterojunction engineering strategy that synergistically enhances reactant adsorption and optimizes intermediate reaction kinetics, offering a tailored approach for efficient catalytic systems.

Key words: MoNi4/MoO2 heterostructures, Cyclohexanone electrooxidation, Charge redistribution, Strengthen adsorption, Intermediate stabilization