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铪-吡啶基酰胺催化链转移烯烃聚合反应的原子模拟及其用于提取关键描述符的机器学习:微观空间位阻对单体插入过程的影响

Atomistic Simulation of Hf-Pyridyl Amido-Catalyzed Chain Transfer Alkene Polymerization Reaction and Its Machine Learning for Extraction of Essential Descriptors: Effect of Microscopic Steric Hindrance on the Monomer Insertion Process.

作者信息

Kanesato Shuhei, Yasoshima Katsuhisa, Matsumoto Kentaro, Misawa Nana, Suzuki Yuichi, Koga Nobuaki, Nagaoka Masataka

机构信息

Graduate School of Informatics, Nagoya University, Furo-cho, Chikusa-ku, Nagoya 464-8601, Japan.

Core Research for Evolutional Science and Technology, Japan Science and Technology Agency (JST-CREST), Honmachi, Kawaguchi 332-0012, Japan.

出版信息

J Phys Chem B. 2024 Jun 27;128(25):6178-6188. doi: 10.1021/acs.jpcb.4c01303. Epub 2024 Jun 6.

DOI:10.1021/acs.jpcb.4c01303
PMID:38845119
Abstract

The microscopic effects of each substituent of the Hf catalyst and the growing polymer on the monomer insertion process were investigated for Hf-pyridyl amido-catalyzed coordinative chain transfer polymerization using the Red Moon method. Since the Hf catalyst has two reaction sites, - and -sites, we separately applied the appropriate analysis methods to each one, revealing that the naphthalene ring influenced monomer insertion at the -one, while the -Pr group and the hexyl group of the adjacent 1-octene unit did the -one. It was interesting to find that the hexyl group of the 1-octene-inserted catalyst (oHfCat) pushes the naphthalene ring toward the -site and narrows the space at the -site, thus indirectly creating a steric hindrance to -insertions. Further, the relative position of the Hf catalyst and the growing polymer was found to be strongly influenced by the patterns of insertion reactions, i.e., - or -insertions. In particular, it was clarified that, after -insertions, the growing polymer on the Hf atom covers the -site, making -insertion less likely to occur. These studies reveal the microscopic effects of the catalyst substituents and the growing polymer on the catalyst during the polymerization reaction process; these microscopic analyses using the RM method should provide atomistic insights that are not easy to obtain experimentally for advanced catalyst design and polymerization control.

摘要

采用红月法研究了铪催化剂的各取代基以及增长聚合物对铪-吡啶基酰胺催化的配位链转移聚合中单体插入过程的微观影响。由于铪催化剂有两个反应位点,即α-位点和β-位点,我们分别对每个位点应用了适当的分析方法,结果表明萘环影响α-位点的单体插入,而相邻1-辛烯单元的异丙基和己基则影响β-位点的单体插入。有趣的是,插入1-辛烯的催化剂(oHfCat)的己基将萘环推向β-位点,并缩小了α-位点的空间,从而间接对α-插入产生空间位阻。此外,发现铪催化剂与增长聚合物的相对位置受插入反应模式(即α-或β-插入)的强烈影响。特别要说明的是,在β-插入之后,铪原子上增长的聚合物覆盖了α-位点,使得α-插入不太可能发生。这些研究揭示了聚合反应过程中催化剂取代基和增长聚合物对催化剂的微观影响;使用RM方法进行的这些微观分析应为先进催化剂设计和聚合控制提供不易通过实验获得的原子层面的见解。

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引用本文的文献

1
Atomistic simulation of olefin polymerization reaction by organometallic catalyst: significant role of microscopic structural dynamics of (pyridylamido) Hf(IV) complex in catalytic reactivity.有机金属催化剂催化烯烃聚合反应的原子模拟:(吡啶基酰胺)铪(IV)配合物微观结构动力学在催化活性中的重要作用。
Front Chem. 2025 Jun 10;13:1618025. doi: 10.3389/fchem.2025.1618025. eCollection 2025.