Chinese Journal of Catalysis ›› 2026, Vol. 88: 279-294.DOI: 10.1016/S1872-2067(26)65116-9

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Vacancy-engineered Ru-based CNT electrocatalysts for ampere-level water splitting in alkaline and anion-exchange membrane water electrolyzers

Bashir Adegbemiga Yusufa,1, Hennayaka Mudiyanselage Charitha Madusanka Jayawardanaa,1, Waleed Yaseena, Jimin Xiea,b, Yilin Denga,*(), Suci Menga,b, Yongming Lic, Abdussamad Mukhtar Mohammedd, Aminu Magajie, Min Chena,*(), Meng Xiea, Yuanguo Xua,b,*()   

  1. a School of Chemistry and Chemical Engineering, School of Materials Science & Engineering, School of Pharmacy, Institute for Energy Research, Jiangsu University, Zhenjiang 212013, Jiangsu, China
    b Jiangsu Jiangke Graphene Research Institute Co., LTD., Jiangsu Jiangke Composite Material Co., Ltd., Zhenjiang 212009, Jiangsu, China
    c Jiangsu Jin Tianchen New Material Co., Ltd., Zhenjiang, Zhenjiang 212000, Jiangsu, China
    d Department of Chemistry, Yobe State University, Damaturu-Yobe State, Nigeria
    e Department of Chemistry, Sule Lamido University Kafin Hausa, Jigawa State, Nigeria
  • Received:2025-10-10 Accepted:2026-02-22 Online:2026-09-18 Published:2026-09-05
  • About author:First author contact: 共同第一作者.
    Contributed equally to this work.
  • Supported by:
    The National Natural Science Foundation of China(W2433031);The National Natural Science Foundation of China(22350410392);The Natural Science Foundation of Jiangsu Province of China(BK20221295);The Fundamental Research and Development Plan of Zhenjiang City in 2024(产业前瞻与共性关键技术GY2024027);The Fundamental Research and Development Plan of Zhenjiang City in 2024(GJ2024012)

Abstract:

Robust metal-support interactions are crucial for designing efficient and corrosion-resistant electrocatalysts, as they significantly enhance charge separation and catalytic activity while also improving the stability and atomic utilization of metal catalysts. Here, we reported a temperature-regulated synthesis strategy to fabricate a self-supporting Ru/B,N co-doped MoO2 electrocatalyst on a CNT framework (RBNM/CNTs500), designed to simultaneously enhance catalytic activity and durability under practical electrolyzer conditions. The RBNM/CNTs500 featured a unique nanostructure with excellent conductivity and strong chemical stability, while oxygen-vacancy-rich MoO2 units at the interface reinforced metal-support interactions. This architecture stabilized Ru species during the OER and facilitated proton transfer, thus accelerating HER kinetics as confirmed by density functional theory calculations. As a result, RBNM/CNTs500 exhibited outstanding bifunctional electrocatalytic performance, achieving exceptionally low overpotentials of 9 mV for the HER and 166 mV for the OER at 10 mA cm‒2, along with superior overall water-splitting activity characterized by a low cell voltage of 1.42 V and stable ampere-level operation at 10, 1000, and 2000 mA cm‒2 in alkaline media. When integrated into an anion-exchange membrane water electrolyzer, RBNM/CNTs500 demonstrated exceptional durability and surpassed benchmark electrocatalysts in performance. This study offers mechanistic insights into defect engineering and underscores a rational design approach for next-generation energy conversion devices.

Key words: Vacancy engineering, Ruthenium-based electrocatalysts, Ampere level overall water splitting, Anion exchange membrane water electrolyzer