Search results for "Chain-growth polymerization"

showing 6 items of 36 documents

Polymerization of methyl and phenyl oxazoline initiated with alkyl chloroformates

2010

It has been shown that alkyl chloroformates are capable of initiating the polymerization of oxazolines. Esters itself initiate rather slowly and the polymerization proceeds via covalent growing species. Exchange of counter ions with triflate or iodide anions leads to faster initiation and higher reaction rates. The polymerization is of living character.

chemistry.chemical_classificationtechnology industry and agricultureChain transfermacromolecular substancesGeneral ChemistryOxazolinePhotochemistryLiving free-radical polymerizationchemistry.chemical_compoundChain-growth polymerizationchemistryPolymerizationPolymer chemistryReversible addition−fragmentation chain-transfer polymerizationIonic polymerizationAlkylBulletin des Sociétés Chimiques Belges
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The Number of Active Sites for the Polymerization of Ethylene, Propylene and Butene-1 by Ziegler-Natta Catalyst

1975

chemistry.chemical_compoundChain-growth polymerizationPolymerizationChemistryPolymer chemistryEthylene propylene rubberZiegler–Natta catalystButene
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Synthesis of Macromolecular Substances by Condensation Polymerization and Stepwise Addition Polymerization

2001

Condensation polymerizations (polycondensations) are stepwise reactions between bifunctional or polyfunctional components, with elimination of simple molecules such as water or alcohol and the formation of macromolecular substances. For the preparation of linear condensation polymers from bifunctional compounds (the same considerations apply to polyfunctional compounds which then lead to branched or crosslinked condensation polymers) there are basically two possibilities. One either starts from a monomer which has two unlike groups suitable for polycondensation (AB type), or one starts from two different monomers, each possessing a pair of identical reactive groups that can react with each …

chemistry.chemical_compoundEnd-groupCondensation polymerChain-growth polymerizationAnionic addition polymerizationPolymerizationchemistryPolymer chemistryCationic polymerizationAddition polymerOrganic chemistryBifunctional
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1977

The solution polymerization of styrene in methylene dichloride catalysed by trifluoromethanesulfonic acid takes place at a high rate even at low catalyst concentration. The S-shaped course of the conversion curves is explained by a reaction mechanism, in which the catalyst rapidly forms an inactive complex with one monomer molecule, and this monomer-acid complex is in equilibrium with the free catalyst molecule from which the propagating species are formed. Therefore, the formation of active initiating species becomes a slow process which depends also on the change of monomer concentration during polymerization. It is assumed that the active initiating species are formed from two or three m…

chemistry.chemical_compoundMonomerChain-growth polymerizationBulk polymerizationPolymerizationChemistryPolymer chemistryPrecipitation polymerizationSolution polymerizationChain transferIonic polymerizationPhotochemistryDie Makromolekulare Chemie
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Measurements on the temperature dependence of the cationic polymerization of styrene in CH2Cl2 with CF3SO3H as catalyst

1979

The cationic polymerization of styrene in CH2Cl2 with CF3SO3H as catalyst and at low monomer concentrations shows, at −15°C, −45°C and −60°C, the same formal dependence on monomer concentration. The dependence on the catalyst concentration is approximately but not exactly of a third order.

inorganic chemicalsMaterials sciencePolymers and Plasticsorganic chemicalsCationic polymerizationSolution polymerizationGeneral ChemistryCondensed Matter PhysicsStyreneCatalysischemistry.chemical_compoundChain-growth polymerizationMonomerchemistryPolymer chemistryMaterials ChemistryIonic polymerizationPolymer Bulletin
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A supported titanium postmetallocene catalyst: Effect of selected conditions on ethylene polymerization

2011

Ethylene polymerization with a titanium complex [N,N-ethylenebis(3-methoxysalicylideneiminato)titanium dichloride] immobilized on the magnesium support with the formula MgCl2(THF)0.32(Et2AlCl)0.36 was studied. In particular, the effects of polymerization temperature, monomer pressure, and polymerization time on the activity of the catalyst and on the polyethylene properties (molecular weight and its distribution, melting point, crystallinity, and bulk density) were evaluated. The findings of investigations prove that the studied supported titanium catalyst is highly active in ethylene polymerization, and its activity increases with increasing temperature and monomer pressure. Moreover, stab…

polyethyleneMaterials sciencePolymers and PlasticsBulk polymerizationsupportsmelting pointtechnology industry and agriculturechemistry.chemical_elementSolution polymerizationGeneral Chemistrymolecular weight distributionPolyethylenecatalystsSurfaces Coatings and Filmschemistry.chemical_compoundChain-growth polymerizationchemistryPolymerizationPolymer chemistryMaterials ChemistryPrecipitation polymerizationCoordination polymerizationTitaniumJournal of Applied Polymer Science
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