Mechanistic Insights into the Pathways of Phenol Hydrogenation on Pd Nanostructures

选择性 环己酮 八面体 化学 环己醇 密度泛函理论 苯酚 纳米颗粒 反应性(心理学) 催化作用 纳米棒 材料科学 结晶学 无机化学 计算化学 有机化学 纳米技术 晶体结构 替代医学 病理 医学
作者
Govind Porwal,Shelaka Gupta,S. Sreedhala,Joes Elizabeth,Tuhin Suvra Khan,M. Ali Haider,C. P. Vinod
出处
期刊:ACS Sustainable Chemistry & Engineering [American Chemical Society]
卷期号:7 (20): 17126-17136 被引量:69
标识
DOI:10.1021/acssuschemeng.9b03392
摘要

Product selectivity in aqueous phase phenol hydrogenation on well-defined supported Pd nanostructures (spheres, cubes, and octahedra) was studied using defined experiments and density functional theory (DFT) simulations. On Pd spheres and octahedra, the reaction initially showed high selectivity (in the first 3 h, at 363 K and 5 bar H2 pressure) toward the partially hydrogenated product cyclohexanone. On prolonged operation (>20 h of reaction time), a shift in the product selectivity (up to 100%) toward the completely hydrogenated product cyclohexanol was observed on Pd spheres and octahedra. In contrast, the reaction on Pd cubes, which only had {100} facets, showed a high selectivity (∼90%) toward the product cyclohexanone even after 40 h, at the same reaction conditions. Since the {111} facets are expected to be the majority sites on a spherical particle, we attribute the selectivity trend observed on spherical Pd particles to be primarily controlled by the selectivity trend on the Pd{111} facets. This observation was further confirmed on performing the hydrogenation reaction on a mixture of Pd cube and Pd octahedron particles in a ratio of 25:75 (representing the site ratio of a spherical particle). DFT simulations provided a mechanistic insight into the reactivity of the two different facets ({100} and {111}) toward phenol hydrogenation. The calculations revealed that the selectivity significantly depended on the activation barriers involved in cyclohexanone hydrogenation on the Pd{111} facets (77 and 57 kJ/mol) as compared to those on the Pd{100} facets (97 and 101 kJ/mol).
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