Chinese Journal of Catalysis ›› 2026, Vol. 87: 327-341.DOI: 10.1016/S1872-2067(26)65104-2

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Achieving selective C−O bond cleavage of esters over monolayer NiMoS catalysts derived from oil-soluble polyoxometalates

Chongzheng Xu, Haoping Di, Fengyue Sun, Wenjing Bao, Yanwei Ju, Dengwei Yan, Changle Yue, Yiyuan Xu, Yunxiu Zhao, Shuo Wang, Jiqian Wang, Yukun Lu*()   

  1. State Key Laboratory of Heavy Oil Processing, College of Chemistry and Chemical Engineering, China University of Petroleum (East China), Qingdao 266580, Shandong, China
  • Received:2025-11-24 Accepted:2026-01-26 Online:2026-08-18 Published:2026-06-24
  • About author:1Contributed equally to this work.
  • Supported by:
    National Natural Science Foundation of China(22478435);National Natural Science Foundation of China(U22B20144);Shandong Provincial Natural Science Foundation(ZR2023MB004);Taishan Scholars Program of Shandong Province(tsqn202408093);Fundamental Research Funds for the Central Universities(23CX03001A);Fundamental Research Funds for the Central Universities(25CX04019A)

Abstract:

Sulfided NiMo catalysts can effectively hydrogenate oxygen-rich bio-oils into high quality hydrocarbon fuels. However, precisely controlling the cleavage of C−O bonds remains challenging. Here, we synthesized an oil-soluble precursor NiMo6-DODA by encapsulating the polyoxometalates (POMs) (NH4)4[NiMo6O24H6] (NiMo6) with surfactants, followed by in-situ construction of an ultra-dispersed monolayer NiMoS catalyst. The “surfactant shell” of the precursor ensured its homogeneous dispersion in the oil phase, while gradually sacrificing and decomposing during the sulfidation to mitigate the aggregation of the MoS2 nanosheets. Meanwhile, the well-defined “POMs core” established an atomic-level Ni-Mo proximity, ensuring the dominance of the Ni-promoted MoS2 active phase. This design not only altered the adsorption configuration of esters on the NiMo catalyst but also introduced abundant edge sulfur vacancies to promote oxygen atom adsorption and accelerate C−O bond cleavage. The results showed that NiMo6-DODA achieved 100% conversion of methyl palmitate and 100% alkane selectivity under low catalyst loading conditions. Notably, the selectivity for n-hexadecane reached 94.2%, significantly surpassing that obtained with a commercial oil-soluble precursor (69.8%). Furthermore, the catalyst maintained high activity across multiple reaction cycles and in the solvent-free conversion of real bio-oils. This strategy of pre-assembly combined with sacrificial sulfidation provides a simple and effective route for designing hydrodeoxygenation catalysts that enable precise control over ester C−O bond cleavage.

Key words: Hydrodeoxygenation, Oil-soluble catalyst, Polyoxometalates, NiMoS Active phases, Monolayer MoS2