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Silica-supported vanadium complexes: Structure, characterization and reactivity, especially towards olefins.

机译:二氧化硅负载的钒配合物:结构,特征和反应性,尤其是对烯烃的反应性。

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摘要

This thesis is divided into four major parts. The first part describes a simple method to measure the content of reactive hydroxyls of various amorphous silicas before and after thermal treatment. The reaction of excess VOCl3 vapor with surface OH groups of partially dehydroxylated silica is rapid and quantitative. Regardless of the degree of dehydroxylation, the stoichiometry of the reaction is invariable, as demonstrated by 51V magic angle spinning NMR spectroscopy and X-ray absorption spectroscopy (XAS). Using this method, we have quantified the reacive hydroxyls of fumed and precipitated silicas as a function of temperature. Non-porous Aerosil silicas have hydroxyl contents that decrease linearly with increasing temperature of thermal treatment. Porous Sylopol silicas have higher hydroxyl contents per unit surface area than Aerosil silicas treated at the same temperature.The third part deals with the preparation and characterization of new vanadium-based Ziegler-Natta catalysts. The catalysts were prepared by sequential reaction of volatile VOCl3 and trimethylaluminum (TMA) with silica. They were characterized by infrared spectroscopy (IR), electron spin resonance spectroscopy (ESR) and stoichiometric analysis. The interaction of TMA with silica/VOCl3 and silica/TMA/VOCl3 results in the grafting of two AI per original hydroxyl group with concomitant formation of two equiv. CH4. In contrast, the reaction of VOCl3 with silica/TMA results in the grafting of two V per original OH group with concomitant formation of two equiv. CH3Cl.The last part of this thesis describes the reaction of the new vanadium-based Ziegler-Natta catalysts with ethylene, propylene and ethylene-propylene mixture. Kinetics at the gas-solid interface were monitored by in situ IR spectroscopy. The reaction is first order in olefin and first-order in vanadium. Based on kinetics and isotope effects, a mechanism of migratory insertion of the olefin into a vanadium-carbon-alpha-bond (Cossee mechanism) is proposed for the propagation step.The second part deals with characterization of silica-supported vanadium complexes using XAS. A combination of X-ray absorption fine structure (EXAFS) and X-ray-absorption near edge structure (XANES) has been used to characterize the local structure around the vanadium metal center for a series of silica-supported vanadium complexes prepared at various temperatures and on different supports (Aerosil and Sylopol silicas). XAS spectra of all the materials were very similar. The local structure around vanadium was not affected by the thermal treatment and the kind of support. Vanadium has a formal oxidation state of +5 and pseudotetrahedral coordination geometry.
机译:本文分为四个主要部分。第一部分描述了一种简单的方法,可以测量热处理前后各种非晶态二氧化硅的反应性羟基含量。过量的VOCl3蒸气与部分脱羟基的二氧化硅的表面OH基的反应快速而定量。不管脱羟基的程度如何,反应的化学计量都是不变的,如51V幻角旋转NMR光谱和X射线吸收光谱(XAS)所证明的。使用这种方法,我们已经确定了气相二氧化硅和沉淀二氧化硅的反应性羟基随温度的变化。无孔Aerosil二氧化硅的羟基含量随热处理温度的升高而线性降低。 Sylopol多孔二氧化硅比在相同温度下处理过的Aerosil二氧化硅具有更高的单位表面积羟基含量。第三部分涉及新型钒基Ziegler-Natta催化剂的制备和表征。通过挥发性VOCl3和三甲基铝(TMA)与二氧化硅的顺序反应来制备催化剂。它们的特征在于红外光谱(IR),电子自旋共振光谱(ESR)和化学计量分析。 TMA与二氧化硅/ VOCl3和二氧化硅/ TMA / VOCl3的相互作用导致每个原始羟基接枝两个AI,并同时形成两个当量。 CH4。相反,VOCl3与二氧化硅/ TMA的反应导致每个原始OH基团接枝两个V,并同时形成两个当量。本文最后一部分描述了新型钒基齐格勒-纳塔催化剂与乙烯,丙烯和乙烯-丙烯混合物的反应。通过原位红外光谱监测气-固界面的动力学。该反应在烯烃中为一级,在钒中为一级。基于动力学和同位素效应,提出了一种将烯烃迁移插入钒碳-α键的机理(Cossee机理)用于扩散步骤。第二部分利用XAS表征了二氧化硅负载的钒配合物。 X射线吸收精细结构(EXAFS)和X射线吸收近边缘结构(XANES)的组合已用于表征在不同温度下制备的一系列二氧化硅负载的钒配合物在钒金属中心周围的局部结构并在不同的载体上(Aerosil和Sylopol硅石)。所有材料的XAS光谱非常相似。钒周围的局部结构不受热处理和载体种类的影响。钒具有+5的形式氧化态和伪四面体配位几何形状。

著录项

  • 作者

    Taha, Ziyad Ahmed.;

  • 作者单位

    University of Ottawa (Canada).;

  • 授予单位 University of Ottawa (Canada).;
  • 学科 Chemistry Inorganic.Chemistry Organic.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 228 p.
  • 总页数 228
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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