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首页> 外文期刊>Molecules >Activity and Thermal Stability of Cobalt(II)-Based Olefin Polymerization Catalysts Adorned with Sterically Hindered Dibenzocycloheptyl Groups
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Activity and Thermal Stability of Cobalt(II)-Based Olefin Polymerization Catalysts Adorned with Sterically Hindered Dibenzocycloheptyl Groups

机译:带有位阻二苯并环庚基的钴(II)基烯烃聚合催化剂的活性和热稳定性

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Five examples of unsymmetrical 2-(2,4-bis(dibenzocycloheptyl)-6-methylphenyl- imino)ethyl)-6-(1-(arylyimino)ethyl)pyridine derivatives (aryl = 2,6-Me2C6H3 in L1; 2,6-Et2C6H3 in L2; 2,6-i-Pr2C6H3 in L3; 2,4,6-Me3C6H2 in L4 and 2,6-Et2-4-MeC6H2 in L5) were prepared and characterized. Treatment with CoCl2 offered the corresponding cobalt precatalysts Co1–Co5, which were characterized by FT-IR and NMR spectroscopy as well as elemental analysis. The molecular structures of Co3 and Co4 determined by single crystal X-ray diffraction revealed distorted square pyramidal geometries with τ5 values of 0.052–0.215. Activated with either MAO or MMAO, the precatalysts displayed high activities in ethylene polymerization, where Co1 with the least bulky substituents exhibited a peak activity of 1.00 × 107 g PE mol?1 (Co) h?1 at 60 °C. With MAO as a cocatalyst, the activity was reduced only by one order of magnitude at 90 °C, which implies thermally stable active sites. The polymerization product was highly linear polyethylene with vinyl end groups. Co3 with the most sterically hindered active sites was capable of generating polyethylene of high molecular weight, reaching 6.46 × 105 g mol?1. Furthermore, high melting point and unimodal molecular weight distribution were observed in the resulting polyethylene. It must be stressed that the thermal stability of the catalyst and the molecular weight of the obtained polyethylene attain the highest values reported for the unsymmetrical 2,6-bis(imino)pyridylcobalt (II) chloride precatalysts.
机译:不对称的2-(2,4-双(二苯并环庚基)-6-甲基苯基-亚氨基)乙基)-6-(1-(芳基亚氨基)乙基)吡啶衍生物的五个实例(L1中的芳基= 2,6-Me2C6H3; 2制备并表征L2中的6-Et2C6H3; L3中的2,6-i-Pr2C6H3; L4中的2,4,6-Me3C6H2和L5中的2,6-Et2-4-MeC6H2。用CoCl2处理可得到相应的钴预催化剂Co1-Co5,并通过FT-IR和NMR光谱以及元素分析对其进行表征。通过单晶X射线衍射确定的Co3和Co4的分子结构显示出畸变的方形锥体形状,其τ5值为0.052-0.215。用MAO或MMAO活化的预催化剂在乙烯聚合反应中显示出高活性,其中具有最小体积取代基的Co1在60°C下的峰活性为1.00×107 g PE mol?1(Co)h?1。用MAO作为助催化剂,在90℃下活性仅降低了一个数量级,这意味着热稳定的活性位点。聚合产物是具有乙烯基端基的高度线性聚乙烯。具有最空间位阻的活性位的Co3能够产生高分子量的聚乙烯,达到6.46×105 g mol?1。此外,在所得聚乙烯中观察到高熔点和单峰分子量分布。必须强调的是,该催化剂的热稳定性和所得聚乙烯的分子量达到了不对称2,6-双(亚氨基)吡啶基钴(II)氯化物预催化剂的最高记录值。

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