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March 14, 2026ACS Catalysis6 citations

Oxygen-Containing Functional Groups in Ni@C(O): Regulating Water-Mediated Pathways for Selective Hydrogenation of Diphenyl Ether to Cyclohexanol

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ZJZhongxi JiangBHBin HuXZXianmei Zhao

Key Points

  • To construct oxygen-containing functional groups in Ni@C(O) and explore their catalytic mechanism for selective hydrogenation.
  • Prepared Ni@C(O) catalyst by calcining oxygen-rich precursors in nitrogen atmosphere.
  • Conducted catalytic conversion experiments of diphenyl ether in aqueous phase.
  • Conducted mechanistic studies on the role of oxygen-containing functional groups.
  • Achieved cyclohexanol selectivity of 96.5% compared to below 50% for traditional Ni/C catalysts.
  • Demonstrated that oxygen-containing functional groups facilitate adsorption of diphenyl ether.
  • Showed stable performance of the Ni@C(O) catalyst over 200 hours in fixed-bed continuous-flow experiment.

Abstract

Constructing oxygen-containing functional groups and understanding their catalytic mechanism are crucial for the design of carbon-based catalysts. A Ni@C(O) catalyst rich in oxygen-containing functional groups was prepared by calcining oxygen-rich precursors in a nitrogen atmosphere. This catalyst exhibited a cyclohexanol selectivity of 96.5% in the aqueous phase catalytic conversion of diphenyl ether, which is significantly higher than that of traditional Ni/C catalysts, with selectivity typically below 50.0%. Mechanistic studies reveal that oxygen-containing functional groups promote the participation of water molecules in the reaction, which is key to achieving high selectivity. This effect occurs because oxygen-containing functional groups induce the adsorption of diphenyl ether molecules on the catalyst surface in a planar twisted configuration. The resulting adsorption geometry provides a favorable spatial environment for water molecules to attack the ether bond in diphenyl ether, thereby driving the selective formation of cyclohexanol. Furthermore, the Ni@C(O) catalyst maintained stable performance for 200 h in a fixed-bed continuous-flow experiment and exhibited broad applicability to a range of analogous substrates containing ether bonds.

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Cite This Study

Jiang et al. (2026) studied this question.

synapsesocial.com/papers/69b4b9fb18185d8a398023fchttps://doi.org/10.1021/acscatal.5c07567
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