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苯乙烯均聚以及乙烯与苯乙烯类共聚单体共聚中的双金属效应:范围、动力学及机理

Bimetallic effects in homopolymerization of styrene and copolymerization of ethylene and styrenic comonomers: scope, kinetics, and mechanism.

作者信息

Guo Neng, Stern Charlotte L, Marks Tobin J

机构信息

Department of Chemistry, Northwestern University, Evanston, Illinois 60208-3113, USA.

出版信息

J Am Chem Soc. 2008 Feb 20;130(7):2246-61. doi: 10.1021/ja076407m. Epub 2008 Jan 26.

Abstract

This contribution describes the homopolymerization of styrene and the copolymerization of ethylene and styrenic comonomers mediated by the single-site bimetallic "constrained geometry catalysts" (CGCs), (mu-CH2CH2-3,3'){(eta(5)-indenyl)1-Me2Si(tBuN)}2 [EBICGC(TiMe2)2; Ti2], (mu-CH2CH2-3,3'){(eta(5)-indenyl)1-Me2Si(tBuN)}2 [EBICGC(ZrMe2)2; Zr2], (mu-CH2-3,3'){(eta(5)-indenyl)1-Me2Si(tBuN)}2 [MBICGC(TiMe2)2; C1-Ti2], and (mu-CH2-3,3'){(eta(5)-indenyl)1-Me2Si(tBuN)}2 [MBICGC(ZrMe2)2; C1-Zr2], in combination with the borate activator/cocatalyst Ph3C+ B(C6F5)4- (B1). Under identical styrene homopolymerization conditions, C1-Ti2 + B1 and Ti2 + B1 exhibit approximately 65 and approximately 35 times greater polymerization activities, respectively, than does monometallic [1-Me2Si(3-ethylindenyl)(tBuN)]TiMe2 (Ti1) + B1. C1-Zr2 + B1 and Zr2 + B1 exhibit approximately 8 and approximately 4 times greater polymerization activities, respectively, than does the monometallic control [1-Me2Si(3-ethylindenyl)(tBuN)]ZrMe2 (Zr1) + B1. NMR analyses show that the bimetallic catalysts suppress the regiochemical insertion selectivity exhibited by the monometallic analogues. In ethylene copolymerization, Ti2 + B1 enchains 15.4% more styrene (B), 28.9% more 4-methylstyrene (C), 45.4% more 4-fluorostyrene (D), 41.2% more 4-chlorostyrene (E), and 31.0% more 4-bromostyrene (F) than does Ti1 + B1. This observed bimetallic chemoselectivity effect follows the same general trend as the pi-electron density on the styrenic ipso carbon (D > E > F > C > B). Kinetic studies reveal that both Ti2 + B1 and Ti1 + B1-mediated ethylene-styrene copolymerizations follow second-order Markovian statistics and tend to be alternating. Moreover, calculated reactivity ratios indicate that Ti2 + B1 favors styrene insertion more than does Ti1 + B1. All the organozirconium complexes (C1-Zr2, Zr2, and Zr1) are found to be incompetent for ethylene-styrene copolymerization, yielding only mixtures of polyethylene and polystyrene. Model compound (mu-CH2CH2-3,3'){(eta(5)-indenyl)[1-Me2Si(tBuN)][Ti(CH2Ph)2]}2 {EBICGC[Ti(CH2Ph)2]2; Ti2(CH2Ph)4} was designed, synthesized, and structurally characterized. In situ activation studies with cocatalyst B(C6F5)3 suggest an eta(1)-coordination mode for the benzyl groups, thus supporting the proposed polymerization mechanism. For ethylene-styrene copolymerization, polar solvents are found to increase copolymerization activities and coproduce atactic polystyrene impurities in addition to ethylene-co-styrene, without diminishing the comonomer incorporation selectivity. Both homopolymerization and copolymerization results argue that substantial cooperative effects between catalytic sites are operative.

摘要

本论文描述了由单中心双金属“受限几何构型催化剂”(CGCs),即(μ-CH₂CH₂-3,3'){(η⁵-茚基)1-Me₂Si(tBuN)}₂ [EBICGC(TiMe₂)₂; Ti₂]、(μ-CH₂CH₂-3,3'){(η⁵-茚基)1-Me₂Si(tBuN)}₂ [EBICGC(ZrMe₂)₂; Zr₂]、(μ-CH₂-3,3'){(η⁵-茚基)1-Me₂Si(tBuN)}₂ [MBICGC(TiMe₂)₂; C1-Ti₂] 和 (μ-CH₂-3,3'){(η⁵-茚基)1-Me₂Si(tBuN)}₂ [MBICGC(ZrMe₂)₂; C1-Zr₂],与硼酸盐活化剂/助催化剂Ph₃C⁺B(C₆F₅)₄⁻(B1)组合介导的苯乙烯均聚反应以及乙烯与苯乙烯类共聚单体的共聚反应。在相同的苯乙烯均聚条件下,C1-Ti₂ + B1和Ti₂ + B1的聚合活性分别比单金属[1-Me₂Si(3-乙基茚基)(tBuN)]TiMe₂(Ti1)+ B1高约65倍和约35倍。C1-Zr₂ + B1和Zr₂ + B1的聚合活性分别比单金属对照物[1-Me₂Si(3-乙基茚基)(tBuN)]ZrMe₂(Zr1)+ B1高约8倍和约4倍。核磁共振分析表明,双金属催化剂抑制了单金属类似物所表现出的区域化学插入选择性。在乙烯共聚反应中,与Ti1 + B1相比,Ti₂ + B1使更多的苯乙烯(B)、4-甲基苯乙烯(C)、4-氟苯乙烯(D)、4-氯苯乙烯(E)和4-溴苯乙烯(F)共聚,其含量分别增加了15.4%、28.9%、45.4%、41.2%和31.0%。观察到的这种双金属化学选择性效应与苯乙烯对位碳上的π电子密度遵循相同的一般趋势(D > E > F > C > B)。动力学研究表明,Ti₂ + B1和Ti1 + B1介导的乙烯-苯乙烯共聚反应均遵循二级马尔可夫统计规律,并且倾向于交替共聚。此外,计算得到的竞聚率表明,Ti₂ + B1比Ti1 + B1更有利于苯乙烯的插入。发现所有有机锆配合物(C1-Zr₂、Zr₂和Zr1)都不能用于乙烯-苯乙烯共聚反应,只能得到聚乙烯和聚苯乙烯的混合物。设计、合成并对模型化合物(μ-CH₂CH₂-3,3'){(η⁵-茚基)[1-Me₂Si(tBuN)][Ti(CH₂Ph)₂]}₂ {EBICGC[Ti(CH₂Ph)₂]₂; Ti₂(CH₂Ph)₄}进行了结构表征。用助催化剂B(C₆F₅)₃进行的原位活化研究表明苄基为η¹配位模式,从而支持了所提出的聚合机理。对于乙烯-苯乙烯共聚反应,发现极性溶剂会增加共聚活性,除了乙烯-苯乙烯共聚物外,还会产生无规聚苯乙烯杂质,但不会降低共聚单体插入选择性。均聚和共聚结果均表明催化位点之间存在显著的协同效应。

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