Search results for "1-Octene"

showing 10 items of 11 documents

Copolymerization of ethylene with norbornene or 1-octene using supported ionic liquid systems

2016

Copolymerization of ethylene with norbornene (E/NB) and ethylene with 1-octene (E/Oct) is performed using supported ionic liquid (SIL) systems, in which metallocene (Cp2VCl2) or post-metallocene [VCl2(salenCl2)] vanadium catalysts are immobilized in pyridinium chloroaluminate ionic liquid supported on silica. The studied SIL catalysts show higher activities as well as stability than their non-supported analogues. In addition, higher activities and better comonomer incorporation are observed for norbornene (above 30 mol%). The comonomer incorporation has considerable influence on copolymer molecular weight (M w), melting temperature, crystallinity degree, and microstructure of the copolymers…

EthyleneMaterials scienceChemistry(all)Polymers and Plastics02 engineering and technologyIonic liquid010402 general chemistry01 natural scienceschemistry.chemical_compoundCrystallinityCopolymerizationPolymer chemistryCopolymerMaterials ChemistryNorbornene1-OcteneComonomerSilicaGeneral ChemistryPolyolefins021001 nanoscience & nanotechnologyCondensed Matter Physics0104 chemical scienceschemistryVanadium catalystIonic liquid0210 nano-technologyMetallocenePolymer Bulletin
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Polypropylene and poly(ethylene-co-1-octene) effective synthesis with diamine-bis(phenolate) complexes: Effect of complex structure on catalyst activ…

2017

A series of group 4 metal complexes bearing amine-bis(phenolate) ligands with the amino side-arm donor: (μ-O)[Me2N(CH2)2N(CH2-2-O-3,5-tBu2-C6H2)2ZrCl]2 (1a), R2N(CH2)2N(CH2-2-O-3-R1-5-R2-C6H2)2TiCl2 (R = Me, R1, R2 = tBu (2a), R = iPr, R1, R2 = tBu (2b), R = iPr, R1 = tBu, R2 = OMe (2c)), and Me2N(CH2)2N(CH2-2-O-3,5-tBu2-C6H2)(CH2-2-O-C6H4)TiCl2 (2d) are used in ethylene and propylene homopolymerization, and ethylene/1-octene copolymerization. All complexes, upon their activation with Al(iBu)3/Ph3CB(C6F5)4, exhibit reasonable catalytic activity for ethylene homo- and copolymerization giving linear polyethylene with high to ultra-high molecular weight (600·× 103–3600·× 103 g/mol). The activi…

EthylenePolymers and Plastics010405 organic chemistryComonomerOrganic Chemistrydiamino-bis(phenolate) catalystsmicrostructurepoly(ethylene-co-1-octene)Ziegler-Natta polymerization010402 general chemistry01 natural sciences0104 chemical sciencesCatalysisLinear low-density polyethylenechemistry.chemical_compoundchemistryPolymerizationDiaminePolymer chemistryMaterials ChemistryCopolymer1-OctenepolypropyleneJournal of Polymer Science Part A-Polymer Chemistry
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Dichlorovanadium(IV) diamine-bis(phenolate) complexes for ethylene (co)polymerization and 1-olefin isospecific polymerization

2018

Abstract Two vanadium complexes bearing amine-bis(phenolate) ligands with the amino side-arm donor, [V{Me2NCH2CH2N(CH2-2-O-3,5-tBu2-C6H2)2}Cl2] (1) and [V{Me2NCH2CH2N(CH2-2-O-3,5-tBu2-C6H2)(CH2-2-O-C6H4)}Cl2] (2), were synthesised and characterized by FTIR and 1H NMR spectroscopy. Upon activation with Al(iBu)3/Ph3CB(C6F5)4, these complexes became active catalysts for 1-octene polymerization giving highly stereoregular polymers (mmmm ∼ 90%) having regioirregularly arranged units. The catalytic activity of the catalysts in ethylene homo- and copolymerization, and their ability to incorporate a comonomer were highly dependent on both the activator type and the complex structure. 1/EtAlCl2 exhi…

EthylenemicrostructureDispersityZiegler-Natta polymerization010402 general chemistry01 natural sciencesCatalysisTREFchemistry.chemical_compoundDiaminediamine-bis(phenolate) ligandPolymer chemistryethyleneCopolymerPhysical and Theoretical Chemistrychemistry.chemical_classificationOlefin fiber010405 organic chemistryChemistryComonomerPolymer0104 chemical sciencescopolymerizationVanadium catalystPolymerization1-octeneJournal of Catalysis
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Synthesis and catalytic performance in ethylene and 1-octene polymerization of chlorotitanium(IV) silsesquioxane complexes. Effect of increasing liga…

2016

Abstract The series of titanasilsesquioxanes that differ in a way of binding to the transition metal ( via one, two or three oxygen atoms) and type of nonreactive substituents bonded to inorganic oxygen-silicon cage ( i -Bu, Ph, c -C 6 H 11 ) were prepared by reacting of TiCl 4 with 1 eqv. of the silsesquioxane ligand. Upon treatment with an appropriate cocatalyst, all titanium precatalysts are active in ethylene and 1-octene polymerization and produce from low to high molecular weight polyethylenes and moderately ([ mmmm ] = 44–74%) isotactic poly(1-octene)s. The influence of polymerization parameters, type of cocatalyst and the silsesquioxane structure on the catalytic behavior of the tit…

Materials scienceDenticityEthylenePolymers and Plastics010405 organic chemistryLigandmicrostructureOrganic ChemistryGeneral Physics and AstronomysilsesquioxaneZiegler-Natta polymerization010402 general chemistry01 natural sciencesSilsesquioxane0104 chemical sciencesCatalysischemistry.chemical_compoundTransition metalchemistryPolymerizationPolymer chemistryMaterials Chemistrytitanium catalystpolyolefins1-OcteneEuropean Polymer Journal
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Microstructure of ethylene-1-hexene and ethylene-1-octene copolymers obtained over Ziegler–Natta catalysts supported on MgCl 2 (THF) 2

2001

Abstract The ethylene copolymerizations with 1-hexene or 1-octene in the presence of hydrogen using three catalysts, MgCl 2 (THF) 2 /VOCl 3 /Et 2 AlCl, MgCl 2 (THF) 2 /VCl 4 /Et 2 AlCl, MgCl 2 (THF) 2 /TiCl 4 /Et 2 AlCl, were investigated. It was found that the addition of hydrogen into the copolymerization feed reduces the molecular weight of the copolymers produced and decreases the activity of all the studied catalysts. The microstructure of the copolymers obtained was determined on the basis of 13 C NMR investigations and the reactivity ratios of the comonomers were calculated. The lack of tendency of the olefin comonomers to the creation of the polymer block was confirmed. It was found…

Olefin fiberEthyleneCopolymerization of ethylene with α-olefinPolymers and PlasticsComonomerOrganic ChemistryPolyethyleneMicrostructure of copolymers1-Hexenechemistry.chemical_compoundchemistryPolymer chemistryMaterials ChemistryZiegler–Natta catalystsReactivity (chemistry)Ziegler–Natta catalyst1-OctenePolymer
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Ethylene homo- and copolymerization catalyzed by vanadium, zirconium, and titanium complexes having potentially tridentate Schiff base ligands

2021

Abstract New potentially tridentate Schiff base ligands, 2-[({4-[(3-N,N-dimethylamino)propyl] phenyl}imino)methyl]-4,6-di-tert-butylphenol (L1H) and 2-[{2-(N-phenyl-N-methylaminomethyl)-phenylimino}-methyl]-4,6-di-tert-butylophenol (L2H) were prepared and after deprotonation they were reacted with VOCl3 or MCl4 (where M = Zr or Ti) to produce corresponding complexes (L1-V, L2-V, L1-Zr, L2-Ti) with good yields. All new compounds were characterized by the 1H and 13C NMR as well as FTIR spectroscopic methods. Upon activation with Et2AlCl or EtAlCl2, both the vanadium complexes exhibited exceptionally high catalytic activities in the ethylene polymerization (up to 69,000 kg/(molV⋅h) for L1-V an…

Schiff baseEthylene010405 organic chemistryComonomerVanadiumchemistry.chemical_elementChain transferVanadium complexZiegler-Natta polymerization010402 general chemistryShiff base ligand01 natural sciencesCatalysis0104 chemical sciencesCatalysisEthylenechemistry.chemical_compoundDeprotonationchemistryChemical composition distributionCopolymerizationPolymer chemistry1-octeneCopolymerPhysical and Theoretical ChemistryJournal of Catalysis
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A comparative study on the polymerization of 1-octene promoted by vanadium and titanium complexes supported by phenoxyimine and salen type ligands

2013

Polymerizations of 1-octene were carried out in the presence of vanadium and titanium complexes bearing salen-type or phenoxyimine ligands activated with various co-catalysts. Vanadium complexes turned out active only in conjunction with MAO, whereas the titanium ones were active in combination with Al(i-Bu)3/Ph3CB(C6F5)4. The activity of all catalysts was moderate or low and it was dependent on the ligand type: bis(phenoxyimine) complexes were more active than the salen ones. Both vanadium and titanium catalytic systems produced poly(1-octene)s possessing atactic structures with [mmmm] sequences in the range from 12 to 56 % at room temperature. A temperature decrease to 0.5 °C for the reac…

TitaniumMaterials sciencePolymers and PlasticsLigandOrganic Chemistrychemistry.chemical_elementVanadiumVanadiumChain transferZiegler-Natta polymerizationCatalysischemistry.chemical_compoundchemistryPolymerizationSalen ligandSalen ligandPhenoxyimine ligandPolymer chemistry1-octeneMaterials ChemistryOrganic chemistry1-OcteneTitaniumJournal of Polymer Research
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Effect of culture parameters on the production of styrene (vinyl benzene) and 1-octene-3-ol by Penicillium caseicolum

1992

SummaryPenicillium caseicolum has been shown to completely synthesize styrene. A medium was developed to test the capacity of different strains for this synthesis. In a synthetic medium, styrene production began only after the glucose was entirely consumed. This production depended on storage temperature and occurred simultaneously with 1-octene-3-ol formation.

[SDV.SA]Life Sciences [q-bio]/Agricultural sciences0106 biological sciencesPenicillium caseicolum[SDV.SA] Life Sciences [q-bio]/Agricultural sciences0303 health sciencesbiologyStereochemistryKineticsGeneral Medicinebiology.organism_classification01 natural sciencesStyrene03 medical and health scienceschemistry.chemical_compoundchemistry010608 biotechnologyPenicilliumSPECTROMETRIE IROrganic chemistryAnimal Science and ZoologyBenzeneComputingMilieux_MISCELLANEOUS030304 developmental biologyFood Science1-OcteneJournal of Dairy Research
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Novel diamine-bis(phenolate) Ti(IV) complexes – tuning the complex structure to control catalytic properties in α-olefin polymerization

2016

Abstract Four monomeric titanium(IV) dichloride complexes of amine-bis(phenolate) ligands having an extra donor arm (2a–2d) and one oxo-bridged complex 3 were successfully synthesized in the reaction of TiCl4 with a sodium salt of the appropriate ligand, and they were characterized by 1H NMR spectroscopy. The ligands had either a dimethylamino side‐arm donor and t-Bu substituents on both (1a) and one (1d) phenolate rings or a diisopropylamino side-arm donor and t-Bu (1b) and t-Bu along with OMe (1c) phenolate substituents. All complexes upon activation with [Ph3CB(C6F5)4] and MAO were used to catalyze polymerization of 1-octene (in liquid monomer) into poly(1-octene). Their activities as we…

chemistry.chemical_classificationBulk polymerization010405 organic chemistryLigandProcess Chemistry and TechnologyPoly(1-octene)microstructurePolymerZiegler-Natta polymerization010402 general chemistry01 natural sciencesCatalysis0104 chemical sciencesCatalysischemistry.chemical_compoundMonomerchemistryPolymerizationTacticityDiaminePolymer chemistrydiamine-bis(phenolate) ligandtitanium complexApplied Catalysis A : General : an International Journal Devoted to Catalytic Science and its Applications
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Synthesis, characterization and catalytic properties for olefin polymerization of two new dimeric zirconium(IV) complexes having diamine-bis(phenolat…

2015

Abstract Reaction of the zirconium tetrachloride with one equivalent of the sodium salt of the diamine bis (phenolate) ligand, L1H2 (Me2NCH2CH2N-(CH2-2-OH-3,5-tBu-C6H2)2) or L2H2 (Me2NCH2CH2N-(CH2-2-OH-3,5-tBu-C6H2)(CH2-2-OH-C6H4)) in the presence of air led to formation of [Lig1ZrCl]2(μ-O) and [Lig2ZrCl]2(μ-O), respectively. These novel oxo-bridged dinuclear zirconium complexes were characterized by elemental analysis, 1H NMR spectroscopy and by single-crystal X-ray diffraction. Their reactivities in polymerization of ethylene and 1-octene, upon activation with Al(iBu)3/Ph3CB(C6F5)4 and MAO, were examined. It was found that lack of t-Bu substituents on one phenolate ring cause a significan…

chemistry.chemical_classificationpolyethyleneZirconiumEthyleneLigandProcess Chemistry and Technologychemistry.chemical_elementPolymerCatalysisCatalysispoly(1-octene)chemistry.chemical_compoundPolymerizationchemistryDiaminezirconium catalystPolymer chemistryTetrachloridediamine-bis(phenolate) ligandOrganic chemistryZiegler–Natta polymerizationApplied Catalysis A : General : an International Journal Devoted to Catalytic Science and its Applications
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