氢解
催化作用
芳基
化学
劈理(地质)
键裂
立体化学
选择性
药物化学
脂肪族化合物
作者
Shiyuan Lu,Lan Zhou,Xu Gao,Li-Ying Sun,Yuan‐Yuan Kang,Xu-Hui Han-ye,Zong-Pin Fu,Jing Liang,Yue-Lun Wang,Le‐Le Qiu,Jian Xiao,Yun‐Peng Zhao
标识
DOI:10.1016/j.mcat.2025.115486
摘要
• 500 °C calcination maximizes oxygen vacancies (O v ) with abundant phase interfaces. • Synergistic Ni-O v dual sites promote substrate adsorption and C-O bond cleavage. • Ni/CeO 2 -500 achieves 100% BPE conversion exclusively to toluene/phenol at 100 °C. • DFT calculations show C-O scission energetically favored over arene hydrogenation. Developing simple and efficient catalytic systems for cleaving bridged linkages in lignin has emerged as a promising valorization strategy. In this work, a series of Ni/CeO 2 catalysts calcined at 400-800 °C were prepared and evaluated for the selective hydrogenolysis of lignin-derived aryl ethers. Among them, Ni/CeO 2 -500 demonstrated optimal activity, achieving complete conversion of benzyl phenyl ether (BPE) at 100 °C with 100% selectivity to toluene and phenol (no detectable arene hydrogenation byproducts). For the more robust β-O-4 and 4-O-5 model compounds, 71%-100% conversion with 81.22%-100% selectivity to aromatic monomers were attained at 180°C. Catalyst characterization revealed that calcination at 500 °C optimized oxygen vacancy (O v ) concentration as evidenced by XPS analysis of O III /O I +O II ratio and Ce³⁺/Ce⁴⁺ ratio. Furthermore, density functional theory (DFT) calculations elucidated a dual-site mechanism: Ni sites facilitate H₂ dissociation and interaction with aromatic rings, and adjacent O v sites activate C-O bonds via coordination to oxygen-containing functional groups. The synergistic Ni-O v cooperation enhances substrate adsorption and lowers the C-O bond dissociation energy by 1.04-1.32 eV, thereby promoting selective hydrogenolysis over arene hydrogenation at lower temperatures. The Ni/CeO₂-500 system demonstrates significant potential for efficient lignin depolymerization under mild conditions, offering new insights for designing non-noble metal catalysts in biomass valorization.
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