991 resultados para Catalisador Ziegler-Natta


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Nesta Dissertação foi utilizado um sistema catalítico Zieger-Natta à base de neodímio para avaliar a influência do agente de halogenação e da razão molar halogênio:Nd sobre a atividade catalítica, a constante de velocidade de propagação, a conversão da polimerização, a microestrutura, a massa molecular e a polidispersão do polibutadieno 1,4-cis. O sistema utilizado era constituído por versatato de neodímio (NdV), hidreto de diisobutilalumínio (DIBAH) e um agente de halogenação. Os agentes halogenantes estudados foram: cloreto de t-butila (t-BuCl), sesquicloreto de etilalumínio (EASC) e cloreto de dietilalumínio (DEAC), em valores de razão molar Cl:Nd que variaram entre 0,5:1 e 5:1 e o dietil-eterato de trifluoreto de boro (BF3.Et2O), na razão molar F:Nd = 3:1. Os polímeros foram caracterizados por espectroscopia na região do infravermelho para determinação da microestrutura e por cromatografia de exclusão por tamanho para determinação das massas moleculares. O teor de unidades 1,4-cis variou de 90 a 98%, a massa molecular numérica média ( ) permaneceu na faixa entre 0,2 e 2x105, e a massa molecular ponderal média ( ) variou de 1,4 a 4x105

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A extrusão reativa do polietileno de alta densidade (PEAD) em presença de peróxidos orgânicos pode promover sua reticulação, provocando mudanças em suas propriedades. Isto deve-se à capacidade do peróxido orgânico de abstrair hidrogênios secundários e terciários da cadeia, podendo assim formar os radicais livres necessários à ocorrência da reticulação. Neste trabalho, amostras de pó de PEAD produzido com catalisador Ziegler-Natta, para utilização em processamento por injeção, sopro ou extrusão de filmes, foram extrusadas com o peróxido de dicumila e o 2,5-dimetil-2,5-di(t-butilperoxi)-hexano em teores de 0,001 a 0,08 pcp. Os produtos obtidos foram caracterizados quanto a suas taxas de fluidez (MFR), densidades, propriedades reológicas, físicas e mecânicas. Para a avaliação reológica foram analisadas as curvas de viscosidade em função da taxa de cisalhamento e determinadas as taxas de cisalhamento críticas, ambas no reômetro capilar. O comportamento viscoelástico foi avaliado pelos módulos de armazenamento e de perda e pela viscosidade complexa. A massa molar e sua distribuição foram determinadas por cromatografia de exclusão por tamanho (SEC). O percentual de reticulação foi verificado pela determinação do teor de material de solúveis em xileno. As propriedades mecânicas analisadas foram resistência à tração, à flexão, ao tensofissuramento e módulo de elasticidade. As propriedades analisadas foram relacionadas às estruturas dos produtos resultantes da extrusão reativa. Verificou-se que a extrusão reativa do PEAD com peróxidos orgânicos originou resinas com distribuição de massas molares mais larga, caráter mais pseudoplástico e com comportamento do fundido mais elástico do que as resinas não modificadas por peróxido. A reologia, dentre as técnicas analíticas utilizadas, apresentou maior sensibilidade às mudanças estruturais decorrentes da extrusão reativa. A extrusão reativa com peróxidos originou resinas com propriedades mecânicas diferenciadas, havendo incremento na resistência ao impacto Charpy e ao tensofissuramento e diminuição no módulo de elasticidade comparativamente às resinas não modificadas. A resistência à tração não apresentou variações significativas entre as resinas modificadas e as não modificadas. O peróxido que se mostrou mais eficiente na extrusão reativa foi o 2,5-dimetil-2,5-di(t-butilperoxi)-hexano.

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Neste trabalho foram sintetizados e caracterizados polietilenos de alta densidade (PEAD) obtidos via homopolimerização de eteno e copolimerização de eteno com 1-buteno, utilizando-se dois sistemas catalíticos baseados em um catalisador Z-N heterogêneo suportado, sintetizado a partir de TiCl4 e etilato de magnésio, que leva à geração in situ de cloreto de magnésio. O objetivo foi avaliar o efeito do 1-buteno sobre as propriedades do PEAD obtido através do catalisador supracitado e IPRA ou TEA como cocatalisadores (estes sistemas catalíticos foram identificados como ZN1-IPRA e ZN1- TEA). Como esperado, observou-se aumento de atividade catalítica quando 1-buteno foi usado como comonômero, conhecido como “efeito comonômero”. Houve redução da densidade do PEAD com a concentração do comonômero no meio reacional na seguinte ordem: homopolímero > copolímero sintetizado com pressão de 1-C4 de 0,5 bar > copolímero sintetizado com pressão de 1-C4 de 0,9 bar. Esta redução da densidade foi acompanhada de um aumento do MFR, de redução de massa molar e polidispersão, esta última também constatada pelas medidas reológicas em reômetro rotacional. Também constatou-se redução de Tc, Tf, cristalinidade, tensão no escoamento, módulo secante a 2 %, resistência à tração por impacto e ESCR. A razão de inchamento foi maior nos homopolímeros obtidos com ambos os sistemas catalíticos, provavelmente devido à maior polidispersão destas resinas, aliado ao fato de também apresentarem maior massa molar. A deconvolução das curvas de GPC e a caracterização das frações de polímero obtidas através do fracionamento preparativo (PREP) provou a existência de uma maior fração de moléculas com alta massa molar no PEAD obtido com o sistema catalítico ZN1-IPRA. Esta fração permitiu explicar, ao menos em parte, as maiores razões de inchamento e a melhor recuperação no teste de fluência dos polímeros obtidos com este sistema catalítico. Não foi possível identificar diferenças significativas na distribuição do comonômero nas cadeias poliméricas dos copolímeros obtidos com ambos os sistemas catalíticos estudados, somente indícios de incorporação diferenciada através da determinação do teor de metilas totais nas frações obtidas por PREP.

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The synthesis of a sterically tailored ligand array (M)_2((C_5H_2-2-Si(CH_3)_3-4-C(CH_3)_3)S_2i(CH_3)_2]("M_2Bp") (M = Li, 16; K, 19) is described. Transmetallation of Li_2Bp with YCl_3(THF)_3 affords exclusively the C_2 symmetric product rac-[BpY(µ_2-Cl)_2Li(THF)_2], 20. A X-ray crystal structure of 20 has been determined; triclinic, P1, a= 13.110 (8), b = 17.163 (15), c = 20.623 (14) Å, α = 104.02 (7), β = 99.38 (5), γ = 100.24 (6)° , Z = 4, R = 0.056. Transmetallation of K_2Bp with YCl_3(THF)_3 affords the halide free complex rac-BpYCl, 23. The corresponding rac-BpLaCl, 28, is prepared in an anlogous manner. In all cases the achiral meso isomer is not obtained since only for the racemic isomers are the unfavorable steric interactions between the Si(CH3)_3 groups in the narrow portion of the [Cp-M'-Cp] wedge avoided. Alkylation of 20 or 23 with LiCH(Si(CH_3)_3)_2 affords rac-BpYCH(Si(CH_3)_3)_2, 26 in good yield. Alkylation of 28 with LiCH(Si(CH_3)_3)_2 affords rac-BpLaCH(Si(CH_3)_3)_2 29. Hydrogenation of 26 cleanly affords the bridging hydride species [BpY(µ_2-H)]_2, 27, as the homochiral (R,R) and (S,S) dimeric pairs. 26 is an efficient initiator for the polymerization of ethylene to high molecular weight linear polyethylene. 27 catalyzes the polymerization of propylene (25% v/v in methylcyclohexane) and neat samples of 1-butene, 1-pentene, 1-hexene to moderately high molecular weight polymers: polypropylene (M_n = 4,200, PDI 2.32, T_m 157 °C); poly-1-butene (M_n = 8,500, PDI 3.44, T_m 105 °C); poly-1-pentene (M_n = 20,000, PDI 1.99, T_m 73 °C); poly-1-hexene (M_n = 24,000, PDI 1.75, T_m < 25 °C). ^(13)C NMR spectra at the pentad analysis level indicates that the degree of isotacticity is 99% mmmm for all polymer samples. 27 is the first single component iso-specific α-olefin polymerization catalyst. The presumed origins of the high isospecificity are presented.

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Using density functional theory, we studied the fundamental steps of olefin polymerization for zwitterionic and cationic Group IV ansa-zirconocenes and a neutral ansa- yttrocene. Complexes [H2E(C5H4)2ZrMe]n (n = 0: E = BH2 (1), BF2 (2), AlH2(3); n = +: E = CH2(4), SiH2(5)) and H2Si(C5H4)2YMe were used as computational models. The largest differences among these three classes of compounds were the strength of olefin binding and the stability of the β-agostic alkyl intermediate towards β-hydrogen elimination. We investigated the effect of solvent on the reaction energetics for land 5. We found that in benzene the energetics became very similar except that a higher olefin insertion barrier was calculated for 1. The calculated anion affinity of [CH3BF3]- was weaker towards 1 than 5. The calculated olefin binding depended primarily on the charge of the ansa linker, and the olefin insertion barrier was found to decrease steadily in the following order: [H2C(C5H4)2ZrMe]+ > [F2B(C5H4)2ZrMe] ≈ [H2B(C5H4)2ZrMe] > [H2Si(C5H4)2ZrMe]+ > [H2Al(C5H4)2ZrMe].

We prepared ansa-zirconocene dicarbonyl complexes Me2ECp2Zr(CO)2 (E = Si, C), and t-butyl substituted complexes (t-BuCp)2Zr(CO)2, Me2E(t-BuCp)2Zr(CO)2 (E = Si, C), (Me2Si)2(t-BuCp)2Zr(CO)2 as well as analogous zirconocene complexes. Both the reduction potentials and carbonyl stretching frequencies follow the same order: Me2SiCp2ZrCl2> Me2CCp2ZrCl2> Cp2ZrCl2> (Me2Si)2Cp2ZrCl2. This ordering is a result of both the donating abilities of the cyclopentadienyl substituents and the orientation of the cyclopentadiene rings. Additionally, we prepared a series of analogous cationic zirconocene complexes [LZrOCMe3][MeB(C6F5)3] (L = CP2, Me2SiCp2, Me2CCP2, (Me2Si)2Cp2) and studied the kinetics of anion dissociation. We found that the enthalpy of anion dissociation increased from 10.3 kcal•mol-1 to 17.6 kcal•mol-1 as exposure of the zirconium center increased.

We also prepared series of zirconocene complexes bearing 2,2-dimethyl-2-sila-4-pentenyl substituents (and methyl-substituted olefin variants). Methide abstraction with B(C6F5) results in reversible coordination of the tethered olefin to the cationic zirconium center. The kinetics of olefin dissociation have been examined using NMR methods, and the effects of ligand variation for unlinked, singly [SiMe2]-linked and doubly [SiMe2]-linked bis(cyclopentadienyl) arrangements has been compared (ΔG‡ for olefin dissociation varies from 12.8 to 15.6 kcal•mol-1). Methide abstraction from 1,2-(SiMe2)25-C5H3)2Zr(CH3)-(CH2CMe2CH2CH = CH2) results in rapid β-allyl elimination with loss of isobutene yielding the allyl cation [{1,2-(SiMe2)25-C5H3)2Zr(η3-CH2CH=CH2)]+.

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In order to expand our understanding of the mechanism of stereocontrol in syndiospecific α-olefin polymerization, a family of Cs-symmetric, ansa-group 3 metallocenes was targeted as polymerization catalysts. The syntheses of new ansa-yttrocene and scandocene derivatives that employ the doubly [SiMe2]- bridged ligand array (1,2-SiMe2)2{C5H-3,5-(CHMe2)2} (where R = t- butyl, tBuThp; where R = i-propyl, iPrThp) are described. The structures of tBuThpY(µ-Cl)2K(THF)2, tBuThpSc(µ-Cl)2K(Et2O)2, tBuThpYCH(SiMe3)2, Y22-(tBuThp)2}(µ2-H)2, and tBuThpSc(µ-CH3)2 have been examined by single crystal X-ray diffraction methods. Ansa-yttrocenes and scandocenes that incorporate the singly [CPh2]-bridged ligand array (CPh2)(C5H4)(C13H8)(where C5H4 = Cp, cyclopentadienyl; where C13H8 = Flu, fluourenyl) have also been prepared. Select meallocene alkyl complexes are active single component catalysts for homopolymerization of propylene and 1-pentene. The scandocene tetramethylaluminate complexes generate polymers with the highes molecular weights of the series. Under all conditions examined atactic polymer microstructures are observed, suggesting a chain-end mechanism for stereocontrol.

A series of ansa-tantalocenes have been prepared as models for Ziegler-Natta polymerization catalysts. A singly bridged ansa-tantalocene trimethyl complex, Me2Si(η5-C5H4)2TaMe3, has been prepared and used for the synthesis of a tantalocene ethylene-methyl complex. Addition of propylene to this ethylene-methyl adduct results in olefin exchange to give a mixture of endo and exo propylene isomers. Doubly-silylene bridged ansa-tantalocene complexes have been prepared with the tBuThp ligand; a tantalocene trimethyl complex and a tantalocene methylidene-methyl complex have been synthesized and characterized by X-ray diffraction. Thermolysis of the methylidene-methyl complex affords the corresponding ethylene-hydride complex. Addition of either propylene or styrene to this ethylene-hydride compound results in olefin exchange. In both cases, only one product isomer is observed. Studies of olefin exchange with ansa-tantalocene olefin-hydride and olefin-methyl complexes have provided information about the important steric influences for olefin coordination in Ziegler-Natta polymerization.

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Evidence for the stereochemical isomerization of a variety of ansa metallocene compounds is presented. For the scandocene allyl derivatives described here, we have established that the process is promoted by a variety of salts in both ether and hydrocarbon solvents and is not accelerated by light. A plausible mechanism based on an earlier proposal by Marks, et al., is offered as an explanation of this process. It involves coordination of anions and/or donor solvents to the metal center with cation assistance to encourage metalcyclopentadienyl bond heterolysis, rotation about the Si-Cp bond of the detached cyclopentadienide and recoordination of the opposite face. Our observations in some cases of thermodynamic racemic:meso ratios under the reaction conditions commonly used for the synthesis of the metallocene chlorides suggests that the interchange is faster than metallation, such that the composition of the reaction mixture is determined by thermodynamic, not kinetic, control in these cases.

Two new ansa-scandocene alkenyl compounds react with olefins resulting in the formation of η3-allyl complexes. Kinetics and labeling experiments indicate a tuck-in intermediate on the reaction pathway; in this intermediate the metal is bound to the carbon adjacent to the silyllinker in the rear of the metallocene wedge. In contrast, reaction of permethylscandocene alkenyl compounds with olefins results, almost exclusively, in vinylic C-H bond activation. It is proposed that relieving transition state steric interactions between the cyclopentadienyl rings and the olefin by either linking the rings together or using a larger lanthanide metal may allow for olefin coordination, stabilizing the transition state for allylic σ-bond metathesis.

A selectively isotopically labeled propylene, CH2CD(13CH3), was synthesized and its polymerization was carried out at low concentration in toluene solution using isospecific metallocene catalysts. Analysis of the NMR spectra (13C, 1H, and 2H) of the resultant polymers revealed that the production of stereoerrors through chain epimerization proceeds exclusively by the tertiaryalkyl mechanism. Additionally, enantiofacial inversion of the terminally unsaturated polymer chain occurs by a non-dissociative process. The implications of these results on the mechanism of olefin polymerization with these catalysts is discussed.

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The isotope effect on propagation rate was determined for four homogeneous ethylene polymerization systems. The catalytic system Cp_2Ti(Et)Cl + EtA1Cl_2 has a k^H_p/k^D_p = 1.035 ± 0.03. This result strongly supports an insertion mechanism which does not involve a hydrogen migration during the rate determining step of propagation (Cossee mechanism). Three metal-alkyl free systems were also studied. The catalyst I_2 (PMe_3)_3Ta(neopentylidene)(H) has a k^H_p/k^D_p = 1.709. It is interpreted as a primary isotope effect involving a non-linear a-hydrogen migration during the rate determining step of propagation (Green mechanism). The lanthanide complexes Cp*_2LuMe•Et_2O and Cp*_2YbMe•Et_2O have a k^H_p/k^D_p = 1.46 and 1.25, respectively. They are interpreted as primary isotope effects due to a partial hydrogen migration during the rate determining step of propagation.

The presence of a precoordination or other intermediate species during the polymerization of ethylene by the mentioned metal-alkyl free catalysts was sought by low temperature NMR spectroscopy. However, no evidence for such species was found. If they exist, their concentrations are very small or their lifetimes are shorter than the NMR time scale.

Two titanocene (alkenyl)chlorides (hexenyl 1 and heptenyl 2 were prepared from titanocene dichloride and a THF solution of the corresponding alkenylmagnesium chloride. They do not cyclize in solution when alone, but cyclization to their respective titanocene(methyl(cycloalkyl) chlorides occurs readily in the presence of a Lewis acid. It is demonstrated that such cyclization occurs with the alkenyl ligand within the coordination sphere of the titanium atom. Cyclization of 1 with EtAlCl_2 at 0°C occurs in less than 95 msec (ethylene insertion time), as shown by the presence of 97% cyclopentyl-capped oligomers when polymerizing ethylene with this system. Some alkyl exchange occurs (3%). Cyclization of 2 is slower under the same reaction conditions and is not complete in 95 msec as shown by the presence of both cyclohexyl-capped oligomers (35%) and odd number α-olefin oligomers (50%). Alkyl exchange is more extensive as evidenced by the even number n-alkanes (15%).

Cyclization of 2-d_1 (titanocene(hept-6-en-1-yl-1-d_1)chloride) with EtA1Cl_2 demonstrated that for this system there is no α-hydrogen participation during said process. The cyclization is believed to occur by a Cossee-type mechanism. There was no evidence for precoordination of the alkenyl double bond during the cyclization process.

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能够作为聚烯烃材料与其它聚合物材料共混增容剂的、含有聚烯烃链段的嵌段共聚物的合成,对于扩大聚烯烃材料的应用,获得性能优良的共混型聚合物材料具有重要意义。烯烃类单体聚合方法单一,而且其通用的聚合方法,Ziegler-Natta聚合,不是令人满意的合成嵌段共聚物的方法。因此,含有聚烯烃链段的嵌段共聚物的合成一直是比较困难的研究课题之一,近年来发展起来的阴离子转Ziegler-Natta聚合方法为合成这类嵌段共聚物开辟了新途径。阴离子转Ziegler-Natta聚合是利用阴离子聚合所得到的活性聚合物及其反离子与过渡金属化合物组成“Ziegler-Natta”催化剂使烯类单体聚合,从而得到含有聚烯烃链段和阴离子聚合物链段的嵌段共聚物的一种新的合成方法。这种结合两种聚合机理的聚合方法能够有效地避免单一机理聚合方法对单体的要求和限制,从而扩大了嵌段共聚物的合成范围。目前,有关阴离子转Ziegler-Natta聚合方法的研究工作尚属于初步阶段,许多基本问题还没有统一的结论。本工作的目的就是对这一聚合方法的聚合规律,特点等基本问题进行初步探讨,为今后这方面工作的开展奠定初步基础。本工作以阴离子转Ziegler-Natta聚合为方法,以PS-EPM嵌段共聚物为合成对象,并通过对产物的组成、分子量、序列分布、温度转变行为及形态的表征,可初步得到以下结论。1、在较低的催化剂浓度下,可使催化效率比较高。在本聚合体系下,最高可达694克EPM段/克Ti。这一数值与一般非载体钛催化体系相比是比较高的。2、在合适的聚合条件下,如聚合时间较短,聚合温度较低,可得到分子量分布较窄的嵌段共聚物,并且基本上不含有非嵌段烯烃共聚物。3、以聚苯乙烯作为阴离子段聚合物,可发生较明显的β-消除反应,使产物中含有难以分离的烯烃共聚物,本工作以几个单元的聚异戊二烯作为聚苯乙烯活性离子的端基,有效地抑制了β-消除反应的发生,得到了比较纯净的PS-EPM嵌段共聚物。5、由阴离子转来的“Ziegler-Natta聚合具有阴离子聚合和Ziegler-Natta聚合的共同特点,是介于阴离子聚合和Ziegler-Natta聚合之间的一种特殊聚合形式;在聚合初期主要呈现阴离子聚合特征随着聚合的进行,逐渐向具有Ziegler-Natta聚合特征的聚合形式过渡。

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本工作研究了均相和载体催化体系下Kaminsky催化剂的烯烃聚合行为,利用自制的两类载体催体催化剂开展了乙烯/α-烯烃共聚合的研究,并对共聚物的分子链结构及其它物理性能进行了表征。

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A zirconium-based Ziegler-Natta catalytic system has been tested in the dimerization of 1-butene. It was found that the concentration of Et2AlCl, Ph3P and PhONa as well as the reaction temperature had great influences on the activity and selectivity of the catalyst. Under the optimum reaction conditions, the conversion of 1-butene is 91.9%, and the selectivity of dimers is 76.7%. Basic ligands such as Ph3P and PhONa can inhibit isomerization of 1-butene to 2-butene effectively. In addition, the metal hydride mechanism was also suggested and some indirect evidence was obtained in favor of this mechanism.

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The first aryldiimine NCN-pincer ligated rare earth metal dichlorides (2,6-(2,6-C6H3R2N=CH)(2)C6H3)LnCl(2)(THF)(2) (Ln = Y, R = Me (1), Et (2), Pr (3); R = Et, Ln = La (4), Nd (5), Gd (6), Sm (7), Eu (8), Tb (9), Dy (10), Ho (11), Yb (12), Lu (13)) were successfully synthesized via transmetalation between 2,6-(2,6-C2H3-R2N=CH)(2)-C6H3Li and LnCl(3)(THF)(1 similar to 3.5). These complexes are isostructural monomers with two coordinating THF molecules, where the pincer ligand coordinates to the central metal ion in a kappa C:kappa N: kappa N' tridentate mode, adopting a meridional geometry.

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Living characteristics of facilely prepared Ziegler-Natta type catalyst system consisting of iron(III) 2-ethylhexanoate, triisobutylaluminum and diethyl phosphite have been found in the polymerization of 1,3-butadiene in hexane at 40 degrees C. The characteristics have been well demonstrated by: a first-order kinetics with respect to monomer conversion, a narrow molecular weight distribution (M-w/M-n = 1.48-1.52) of polybutadiene in the entire range of polymerization conversion and a good linearity between M-n and the yield of polymer. Feasible post-polymerization of 1,3-butadiene and block co-polymerization of 1,3-butadiene and isoprene further support the living natures of the catalyst bestowed with.

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Single-walled carbon nanotubes (SWNTs) were modified with polyethylene (PE) prepared by in situ Ziegler-Natta polymerization. Because of the catalyst pre-treated on the surface of the SWNTs, the ethylene was expected to polymerize there. Scanning electron microscopy images and solubility measurements showed that the surface of the SWNTs was covered with a PE layer, and a crosslink may have formed between the SWNTs and PE. When the SWNTs covered with a PE layer were mixed with commercialized PE by melt blending, the resulting composite had better mechanical properties than the composite from the SWNTs without a PE layer. The yield strength, the tensile strength and modulus, the strain at break, and the fracture energy of the modified-SWNT/PE composites were improved by 25, 15.2, 25.4, 21, and 38% in comparison with those of the raw-SWNT/PE composites.