沸石
ZSM-5型
乙烯
选择性
化学
催化作用
布朗斯特德-洛瑞酸碱理论
化学工程
光化学
有机化学
工程类
作者
Omar Abed,Hend Omar Mohammed,Rushana Khairova,Idoia Hita,Vijay K. Velisoju,Natalia Morlanés,Mark J. Meijerink,Abdul‐Hamid Emwas,Sergio Vernuccio,Pedro Castaño
标识
DOI:10.1002/cctc.202500957
摘要
Abstract We encapsulated Ni nanoparticles in a hollow ZSM‐5 zeolite catalyst using the dissolution‐recrystallization method to catalyze ethylene oligomerization. Our aim is to engineer an idealized catalyst free of Brønsted acid contributions to kinetics or deactivation, having isolated and encapsulated Ni 2 ⁺–zeolite species, to study the intrinsic oligomerization kinetics on Ni 2 ⁺–zeolite through an experimental and microkinetic standpoint. We proved how the hollow architecture encapsulates both Ni 2 ⁺ and NiO species, being the former significantly more active and selective toward dimerization. A comprehensive microkinetic model, grounded in the Cossee‐Arlman mechanism and parameterized using experimental data, provides a detailed understanding of the reaction network on isolated Ni 2 ⁺ sites. The model reveals that while linear butene formation dominates, its selectivity decreases with increasing ethylene conversion, temperature, and pressure, highlighting the contribution of isomerization pathways at elevated temperatures. This study focuses on the method to develop isolated oligomerization sites and then studies the intrinsic microkinetic pathways and rates.
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