氢解
甲苯
催化作用
双金属片
选择性
化学
吸附
无机化学
纳米颗粒
金属
光化学
化学工程
氧气
协同催化
多相催化
有机化学
过渡金属
氧化物
作者
Jimei Zhang,Yanchun Shi,Junwen Chen,Sihan Sun,Bi Wu,Lei Wang,Qiang Chen
出处
期刊:ACS Catalysis
[American Chemical Society]
日期:2025-10-03
卷期号:15 (20): 17301-17313
标识
DOI:10.1021/acscatal.5c03303
摘要
The hydrogenolysis of biobased phenolics into high-value arenes is considered as the potential alternative strategy to petroleum-based arenes, but the widely used Ni-based catalysts generally suffer from a poor arenes yield. Herein, we demonstrated a strategy by introducing Mo species into Ni@Silicalite-1 (Ni@S-1) to drive the diffusion of Ni particles embedded at the external surface layer of S-1 into its deeper internal crystals to form uniformly confined NiMo bimetallic nanoparticles (2–5 nm) with rich oxygen vacancies. As for hydroxyl hydrogenolysis of vapor-phase m-cresol as an example, NiMo@S-1 presented a remarkable toluene production rate of 480.3 μmol[toluene]·g[Ni]–1·s–1 with a hydroxyl hydrogenolysis rate of 501.9 μmol[m-cresol]·g[Ni]–1·s–1 at 350 °C under reported minimal metal Ni loading, suggesting the achievement of the highest hydroxyl hydrogenolysis rate over disclosed Ni-based catalysts by far. As analyzed, such induced confined structures enforce the m-cresol adsorbed onto the metal surface via the vertical geometry for the shape-selective effect of zeolites, and the oxygenophilic oxygen vacancies of NiMo@Silicalite-1 further strengthen the vertically oriented m-cresol to interact with active sites through the hydroxyl group rather than the phenyl group, thus greatly enhancing the desired hydroxyl hydrogenolysis process.
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