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面对 Zr(IV)-吡啶酰胺聚合催化剂的意外反应途径。

Facing unexpected reactivity paths with Zr(IV)-pyridylamido polymerization catalysts.

机构信息

Institute of Chemistry of OrganoMetallic Compounds, ICCOM-CNR, Via Madonna del Piano, 10-50019 Sesto F.no, Florence, Italy.

出版信息

Chemistry. 2012 Jan 9;18(2):671-87. doi: 10.1002/chem.201102194. Epub 2011 Dec 6.

Abstract

This work provides original insights to the better understanding of the complex structure-activity relationship of Zr(IV)-pyridylamido-based olefin polymerization catalysts and highlights the importance of the metal-precursor choice (Zr(NMe(2))(4) vs. Zr(Bn)(4)) to prepare precatalysts of unambiguous identity. A temperature-controlled and reversible σ-bond metathesis/protonolysis reaction is found to take place on the Zr(IV)-amido complexes in the 298-383 K temperature range, changing the metal coordination sphere dramatically (from a five-coordinated tris-amido species stabilized by bidentate monoanionic {N,N(-)} ligands to a six-coordinated bis-amido-mono-amino complexes featured by tridentate dianionic {N(-),N,C(-)} ligands). Well-defined neutral Zr(IV)-pyridylamido complexes have been prepared from Zr(Bn)(4) as metal source. Their cationic derivatives Zr(IV) N(-),N,C(-)}BnB(C(6)F(5))(4) have been successfully applied to the room-temperature polymerization of 1-hexene with productivities up to one order of magnitude higher than those reported for the related Hf(IV) state-of-the-art systems. Most importantly, a linear increase of the poly(1-hexene) M(n) values (30-250 kg mol(-1)) has been observed upon catalyst aging. According to that, the major active species (responsible for the increased M(n) polymer values) in the aged catalyst solution, has been identified.

摘要

这项工作为更好地理解 Zr(IV)-吡啶酰胺基烯烃聚合催化剂的复杂结构-活性关系提供了新的见解,并强调了选择金属前体(Zr(NMe(2))(4)与 Zr(Bn)(4))的重要性,以制备具有明确身份的预催化剂。发现 Zr(IV)-酰胺配合物在 298-383 K 的温度范围内发生温度控制和可逆的σ键复分解/质子转移反应,这极大地改变了金属配位球(从由双齿单阴离子{N,N(-)}配体稳定的五配位三酰胺物种转变为具有三齿二阴离子{N(-),N,C(-)}配体的六配位双酰胺-单氨基配合物)。已经从 Zr(Bn)(4)作为金属源制备了结构明确的中性 Zr(IV)-吡啶酰胺配合物。它们的阳离子衍生物Zr(IV) N(-),N,C(-)}BnB(C(6)F(5))(4)已成功应用于 1-己烯的室温聚合,产率比相关的 Hf(IV)最先进体系高一个数量级。最重要的是,在催化剂老化过程中观察到聚(1-己烯)M(n)值(30-250 kg mol(-1))的线性增加。根据这一点,已经确定了老化催化剂溶液中主要的活性物种(负责增加 M(n)聚合物值)。

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