Chinese Journal of Catalysis ›› 2026, Vol. 84: 401-416.DOI: 10.1016/S1872-2067(26)65005-X

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Highly efficient electrocatalytic reductive cleavage of lignin model compounds over Ru@Bi/N-C: Interfacial and defect effects

Jingjing Shia, Yanju Lub, Kui Wanga, Zupeng Chenb, Junming Xua,b(), Jianchun Jianga,b   

  1. a Institute of Chemical Industry of Forest Products, Chinese Academy of Forestry, Key Laboratory of Biomass Energy and Material, Jiangsu Province, National Engineering Lab. for Biomass Chemical Utilization, Nanjing 210042, Jiangsu, China
    b Jiangsu Co-Innovation Center of Efficient Processing and Utilization of Forest Resources, International Innovation Center for Forest Chemicals and Materials, Nanjing Forestry University, Nanjing 210037, Jiangsu, China
  • Received:2025-08-13 Accepted:2025-09-16 Online:2026-05-18 Published:2026-04-16
  • Contact: * E-mail: xujunming@icifp.cn (J. Xu).
  • About author:First author contact:

    Jingjing Shi: Investigation, Data curation, Validation, Writing - original draft, Visualization. Junming Xu: Resources, Supervision, Writing - review & editing, Project administration, Funding acquisition. Kui Wang: Supervision. Yanju Lu: Supervision. Zupeng Chen: Supervision, Writing - review & editing. Jianchun Jiang: Resources, Supervision, Project administration.

  • Supported by:
    National Natural Science Foundation of China(32171713)

Abstract:

Understanding and regulating the substrate adsorption behavior and hydrogen species (Hspe) migration channels are crucial for achieving efficient lignin electrocatalytic hydrogenation (ECH). This effective Bi-Ru interface and adjacent N-defect sites were constructed on Ru@Bi/N-C catalyst, thereby controllably modulating the blocking and exposure of substrate adsorption sites while establishing ideal Hspe migration pathways. By introducing heteropolyacid (HPW) and hexafluoroisopropanol (HFIP) electrolyte, the conversion of 2-phenoxy-1-phenylethanol attained 93.64%, with Faraday efficiency (FE) of 91.92%. Moreover, the high hydrogenation deoxygenation efficiency (> 90%) was also obtained for phenolic monomers, demonstrating superior performance compared to most advanced electrocatalytic systems. Synchrotron radiation, in-situ Raman, and density functional theory calculations have demonstrated that the Bi-Ru interface obstructed the strong substrates adsorption on the Ru crystal surface, thereby facilitating the adsorption-activation and rapid desorption at N-defect sites. The blocking effect of Bi-Ru interface inhibited the hydrogen evolution reaction while promoting the spillover of adsorbed hydrogen (Hads) to enable efficient ECH. Additionally, HPW mediated electron transfer could supply abundant Hads, whereas polar HFIP promoted the protonation of substrate hydroxyl. This research developed a universal strategy for creating an exquisite catalytic network and establishing an optimized electrolyte microenvironment, providing significant insights for the development of highly efficient lignin ECH systems.

Key words: Lignin electrochemical hydrogenation, Interface effect, Hydrogen species migration channel, Adsorption modulation