Chinese Journal of Catalysis ›› 2025, Vol. 76: 146-158.DOI: 10.1016/S1872-2067(25)64748-6

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Suppressing catalyst reconstruction in neutral electrolyte: stabilizing Co-O-Mo point-to-point connection of cobalt molybdate by tungsten doping for oxygen evolution reaction

Zhouzhou Wang, Qiancheng Zhou, Li Luo, Yaran Shi, Haoran Li, Chunchun Wang, Kesheng Lin, Chengsi Wang, Libing Zhu, Linyun Han, Zhuo Xing(), Ying Yu()   

  1. Institute of Nanoscience and Nanotechnology, College of Physical Science and Technology, Central China Normal University, Wuhan 430079, Hubei, China
  • Received:2025-04-01 Accepted:2025-05-01 Online:2025-09-18 Published:2025-09-10
  • Contact: Zhuo Xing, Ying Yu
  • Supported by:
    National Key Research and Development Program of China(2022YFB3803600);National Natural Science Foundation of China(52472205);National Natural Science Foundation of China(12275199);self-determined research funds of CCNU from the colleges’ basic research and operation of MOE(CCNU25ZH006);Excellent Doctoral Dissertation Cultivation Grant from Central China Normal University(2024CXZZ148);National Undergraduate Training Program for Innovation and Entrepreneurship for Central China Normal University(202510511088)

Abstract:

Neutral oxygen evolution reaction (OER) is a crucial half-reaction for electrocatalytic chemical production under mild condition, but with limited development due to low activity and poor stability. Herein, a tungsten-doped cobalt molybdate (WDCMO) catalyst was synthesized for efficient and durable OER under neutral electrolyte. It is demonstrated that catalyst reconstruction is suppressed by W doping, which stabilizes the Co-O-Mo point-to-point connection in CoMoO4 architecture and stimulates to a lower valence state of active sites over the surface phase. Thereby, the surface structure maintains to avoid compound dissolution caused by over-oxidation during OER. Meanwhile, the WDCMO catalyst promotes charge transfer and optimizes *OH intermediate adsorption, which improves reaction kinetics and intrinsic activity. Consequently, the WDCMO electrode exhibits an overpotential of 302 mV at 10 mA cm-2 in neutral electrolyte with an improvement of 182 mV compared with CoMoO4 electrode. Furthermore, W doping significantly improves the electrode stability from 50 h to more than 320 h, with a suppressive potential attenuation from 2.82 to 0.29 mV h-1. This work will shed new light on designing rational electrocatalysts for neutral OER.

Key words: Neutral oxygen evolution reaction, Suppressive catalyst reconstruction, Cobalt molybdate, Tungsten doping, Stability