Mechanistic Aspects of the Ziegler-Natta Polymerization

<p>The isotope effect on propagation rate was determined for four homogeneous ethylene polymerization systems. The catalytic system Cp<sub>2</sub>Ti(Et)Cl + EtAlCl<sub>2</sub> has a k<sup>H</sup><sub>p</sub>/k<sup>D</sup><sub>p&...

Full description

Bibliographic Details
Main Author: Soto, Jorge Gonzalez
Format: Others
Published: 1984
Online Access:https://thesis.library.caltech.edu/8531/1/Soto%201984.pdf
Soto, Jorge Gonzalez (1984) Mechanistic Aspects of the Ziegler-Natta Polymerization. Dissertation (Ph.D.), California Institute of Technology. doi:10.7907/AXPG-AG37. https://resolver.caltech.edu/CaltechTHESIS:07072014-083212737 <https://resolver.caltech.edu/CaltechTHESIS:07072014-083212737>
id ndltd-CALTECH-oai-thesis.library.caltech.edu-8531
record_format oai_dc
spelling ndltd-CALTECH-oai-thesis.library.caltech.edu-85312019-12-22T03:09:44Z Mechanistic Aspects of the Ziegler-Natta Polymerization Soto, Jorge Gonzalez <p>The isotope effect on propagation rate was determined for four homogeneous ethylene polymerization systems. The catalytic system Cp<sub>2</sub>Ti(Et)Cl + EtAlCl<sub>2</sub> has a k<sup>H</sup><sub>p</sub>/k<sup>D</sup><sub>p</sub> = 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<sub>2</sub>(PMe<sub>3</sub>)<sub>3</sub>Ta(neopentylidene)(H) has a k<sup>H</sup><sub>p</sub>/k<sup>D</sup><sub>p</sub> = 1.709. It is interpreted as a primary isotope effect involving a non-linear α-hydrogen migration during the rate determining step of propagation (Green mechanism). The lanthanide complexes Cp<sup>*</sup><sub>2</sub>LuMe•Et<sub>2</sub>O and Cp<sup>*</sup><sub>2</sub>YbMe•Et<sub>2</sub>O have a k<sup>H</sup><sub>p</sub>/k<sup>D</sup><sub>p</sub> = 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.</p> <p>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.</p> <p>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<sub>2</sub> 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%).</p> <p>Cyclization of 2-d<sub>1</sub> (titanocene(hept-6-en-1-y1-1-d<sub>1</sub>)chloride) with EtAlCl<sub>2</sub> 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.</p> 1984 Thesis NonPeerReviewed application/pdf https://thesis.library.caltech.edu/8531/1/Soto%201984.pdf https://resolver.caltech.edu/CaltechTHESIS:07072014-083212737 Soto, Jorge Gonzalez (1984) Mechanistic Aspects of the Ziegler-Natta Polymerization. Dissertation (Ph.D.), California Institute of Technology. doi:10.7907/AXPG-AG37. https://resolver.caltech.edu/CaltechTHESIS:07072014-083212737 <https://resolver.caltech.edu/CaltechTHESIS:07072014-083212737> https://thesis.library.caltech.edu/8531/
collection NDLTD
format Others
sources NDLTD
description <p>The isotope effect on propagation rate was determined for four homogeneous ethylene polymerization systems. The catalytic system Cp<sub>2</sub>Ti(Et)Cl + EtAlCl<sub>2</sub> has a k<sup>H</sup><sub>p</sub>/k<sup>D</sup><sub>p</sub> = 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<sub>2</sub>(PMe<sub>3</sub>)<sub>3</sub>Ta(neopentylidene)(H) has a k<sup>H</sup><sub>p</sub>/k<sup>D</sup><sub>p</sub> = 1.709. It is interpreted as a primary isotope effect involving a non-linear α-hydrogen migration during the rate determining step of propagation (Green mechanism). The lanthanide complexes Cp<sup>*</sup><sub>2</sub>LuMe•Et<sub>2</sub>O and Cp<sup>*</sup><sub>2</sub>YbMe•Et<sub>2</sub>O have a k<sup>H</sup><sub>p</sub>/k<sup>D</sup><sub>p</sub> = 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.</p> <p>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.</p> <p>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<sub>2</sub> 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%).</p> <p>Cyclization of 2-d<sub>1</sub> (titanocene(hept-6-en-1-y1-1-d<sub>1</sub>)chloride) with EtAlCl<sub>2</sub> 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.</p>
author Soto, Jorge Gonzalez
spellingShingle Soto, Jorge Gonzalez
Mechanistic Aspects of the Ziegler-Natta Polymerization
author_facet Soto, Jorge Gonzalez
author_sort Soto, Jorge Gonzalez
title Mechanistic Aspects of the Ziegler-Natta Polymerization
title_short Mechanistic Aspects of the Ziegler-Natta Polymerization
title_full Mechanistic Aspects of the Ziegler-Natta Polymerization
title_fullStr Mechanistic Aspects of the Ziegler-Natta Polymerization
title_full_unstemmed Mechanistic Aspects of the Ziegler-Natta Polymerization
title_sort mechanistic aspects of the ziegler-natta polymerization
publishDate 1984
url https://thesis.library.caltech.edu/8531/1/Soto%201984.pdf
Soto, Jorge Gonzalez (1984) Mechanistic Aspects of the Ziegler-Natta Polymerization. Dissertation (Ph.D.), California Institute of Technology. doi:10.7907/AXPG-AG37. https://resolver.caltech.edu/CaltechTHESIS:07072014-083212737 <https://resolver.caltech.edu/CaltechTHESIS:07072014-083212737>
work_keys_str_mv AT sotojorgegonzalez mechanisticaspectsofthezieglernattapolymerization
_version_ 1719305353518120960