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Computational modeling of heterogeneous Ziegler-Natta catalysts for olefins polymerization

机译:烯烃聚合烯烃聚合的异质齐格勒 - 纳塔催化剂的计算模拟

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Since 1963, when Karl Ziegler and Giulio Natta were jointly awarded the Nobel Prize for their discoveries of the catalytic polymerization of olefins with Ti-chlorides and Al-alkyls, heterogeneous Ziegler-Natta (ZN) catalysts have become the main catalysts for the industrial production of polyolefins. Despite of the relevance of ZN catalysts for the large-scale production of polyolefins, a clear mechanistic understanding of these catalysts is still incomplete due to the elusive nature of the active site structures. Over the last two decades, researchers have used density functional theory (DFT) methods to clarify the polymerization mechanisms and to identify the nature of the active sites, unraveling the influence of supports, cocatalysts, and the effect of internal and external donors on the polymerization processes. Major efforts were dedicated to understanding the origin of stereoselectivity in alpha-olefin polymerization as well as the termination reactions mechanisms, and the role that impurities can play in heterogeneous ZN catalysis. Here, we review the DFT studies on heterogeneous ZN catalysts and suggest promising areas for future research. (C) 2018 Elsevier B.V. All rights reserved.
机译:自1963年以来,当Karl Ziegler和Giulio Natta共同授予诺贝尔奖的烯丙醛授予用Ti-Chloride和Al-烷基的烯烃催化聚合时,非均相Ziegler-Natta(Zn)催化剂已成为工业生产的主要催化剂聚烯烃。尽管Zn催化剂对聚烯烃的大规模生产的相关性,但由于活性位点结构的难以捉摸的性质,对这些催化剂的透明机械理解仍然不完整。在过去的二十年中,研究人员使用了密度泛函理论(DFT)方法来阐明聚合机制并鉴定活性位点的性质,解开支撑件,助催化剂和内外供体对聚合的影响。流程。主要努力致力于了解α-烯烃聚合中立体选择性的起源以及终止反应机制,以及杂质在异质Zn催化中起作用的作用。在这里,我们审查了对异质锌催化剂的DFT研究,并提出了未来研究的有希望的领域。 (c)2018 Elsevier B.v.保留所有权利。

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