Search results for "Polymerization"

showing 10 items of 1689 documents

Stabilizing nanostructured lithium insertion materials via organic hybridization: A step forward towards high-power batteries

2014

Abstract Herein, we present the electrochemical characterization of carbon-coated TiO 2 nanorods, obtained by carbonizing RAFT (reversible addition fragmentation chain transfer) polymerization derived block copolymers anchored on anatase TiO 2 nanorods. These carbon-coated TiO 2 nanorods show an improved electrochemical performance in terms of first cycle reversibility, specific capacity, cycling stability, and high rate capability. More importantly, however, the structural disordering observed in the uncoated TiO 2 nanorods by means of galvanostatic and potentiodynamic cycling as well as ex situ XRD analysis, does not occur for the carbon-coated material. Preventing this structural disorde…

AnataseMaterials scienceRenewable Energy Sustainability and the EnvironmentInorganic chemistryEnergy Engineering and Power Technologychemistry.chemical_elementChain transferElectrochemistryPolymerizationchemistryCopolymerReversible addition−fragmentation chain-transfer polymerizationLithiumNanorodElectrical and Electronic EngineeringPhysical and Theoretical ChemistryJournal of Power Sources
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Polymerization with heterogeneous metalorganic catalysts. VI. Differences in polymerization activity of α-olefins and some kinetic results on butene-…

1967

Relative changes in polymerization activity of ethylene, propylene, and butene-1 in Ziegler-Natta polymerization were compared by use of TiCl3 samples contaminated with O2 and H2O to various extents. Catalyst depletion varied for the three monomers which supported the existence of different active centers. In butene-1 polymerizations with the system Al(C2H5)2Cl–TiCl3, the formation of active centers involves an irreversible and a reversible (adsorption) reaction, the former pertaining to the formation of Al(C2H5)Cl2 and dependent upon the purity of the TiCl3. The kinetic treatment of the rate curves suggests a mixed order of catalyst deactivation and again points to the importance of Al(C2H…

Anionic addition polymerizationChain-growth polymerizationBulk polymerizationPolymerizationChemistryPolymer chemistryGeneral EngineeringCationic polymerizationPrecipitation polymerizationCoordination polymerizationPhotochemistryIonic polymerizationJournal of Polymer Science Part A-1: Polymer Chemistry
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Some New Copolymers by Ionic Polymerization

1980

In the first part the cationic polymerization of a homologous series of cyclic ether–acetals with ring sizes of 11, 14, and 17 atoms is described. During the polymerization of triethylene glycol formal (TGF) an equilibrium is reached and besides high polymers cyclic oligomers are formed. The oligomers and the polymers are built up of a regular sequence of one oxymethylene unit and three oxyethylene units –[–(OCH2) (OC2H4)3–]–x. They are therefore be labelled a “sequenced copolymer.” The equilibrium concentrations of the cyclic oligomers with a polymerization degree from 2 to 15 follow the Jacobson–Stockmayer equation. The 14- and 17-membered monomers POC and HOC forms cyclic oligomers and h…

Anionic addition polymerizationChain-growth polymerizationPolymers and PlasticsPolymerizationChemistryPolymer chemistryMaterials ChemistryCationic polymerizationCopolymerLiving polymerizationIonic polymerizationRing-opening polymerizationPolymer Journal
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Homogeneous Langmuir-Blodgett Film of Double-Chain Ammonium Amphiphile Complexed with Anionic Polymer

1988

Heterogeneous textures suggesting the coexistence of a fluid and a solid phase were found both in a surface monolayer and in a deposited Langmuir-Blodgett (LB) film of double-chain ammonium amphiphiles by fluorescence microscopy. Although an annealing of the surface monolayer at 40°C allowed crystal growth, the heterogeneous phase separation remained in the LB film. A drastic change of the fluorescence image shows that the recrystallization of the complexed monolayer with anionic polymers conducted the homogeneous monolayer.

Anionic addition polymerizationChemical engineeringAnnealing (metallurgy)ChemistryPhase (matter)AmphiphileMonolayerGeneral EngineeringGeneral Physics and AstronomyOrganic chemistryCrystal growthLangmuir–Blodgett filmPolyelectrolyteJapanese Journal of Applied Physics
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Über zwei formen des initiators Na-naphthalin und die bestimmung der „lebenden” kettenenden bei der anionischen polymerisation

1969

Na-Naphthalin in THF kommt in (mindestens) 2 Formen I und I' vor, die sich beim Start der anionischen Polymerisation von Styrol sehr verschieden verhalten. Ohne Zusatg von NaBPh4 wirken beide Formen als Initiatoren. Bei Zusatz von NzBPh4 wird die From I' desktiviert, wobei auf ein Molekul I' zwei Molekule NaBPh4 entfallen. Die hierbei entstehende inaktive Verbindung hat in der Umgebung der Wellenlange 350 nm fast den gleichen Extinktionskoeffizienten wie die “lebenden” Enden. Bei Nichtberucksichtigung dieses Effektes erhalt man daher fur die Konzentration der “lebenden” enden aus Absorptionsmessungen einen zu hohen Wert und fur die Geschwindigkeitskonstante kw(±) der Polymerisaton uber das …

Anionic addition polymerizationChemistryPolymer chemistryDie Makromolekulare Chemie
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Hyperbranched Polyglycerol-Based Lipids via Oxyanionic Polymerization: Toward Multifunctional Stealth Liposomes

2010

We describe the synthesis of linear-hyperbranched lipids for liposome preparation based on linear poly(ethylene glycol) (PEG) and hyperbranched polyglycerol (PG). Molecular weights were adjusted to values around 3000 g/mol with varying degrees of polymerization of the linear and the branched segments in analogy to PEG-based stealth lipids; polydispersities were generally low and below 1.3. The hydrophobic anchors were introduced into the lipid structures as initiators for the anionic polymerization of ethylene oxide and are either based on cholesterol or on different aliphatic glyceryl ethers. Complete incorporation of the apolar initiators was evidenced by MALDI-ToF analysis at all stages …

AnionsGlycerolLiposomeMagnetic Resonance SpectroscopyPolymers and PlasticsEthylene oxidePolymerstechnology industry and agricultureBioengineeringLipidsSmall-angle neutron scatteringBiomaterialschemistry.chemical_compoundEnd-groupAnionic addition polymerizationchemistryDynamic light scatteringPolymerizationSpectrometry Mass Matrix-Assisted Laser Desorption-IonizationLiposomesSpectroscopy Fourier Transform InfraredPolymer chemistryMaterials Chemistrylipids (amino acids peptides and proteins)Ethylene glycolBiomacromolecules
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Dynamic magnetic materials based on the cationic coordination polymer [Cu(btix)2]n(2n+) [btix = 1,4-bis(triazol-1-ylmethyl)benzene]: tuning the struc…

2012

A three-dimensional coordination polymer, [Cu(btix)(2)(BF(4))(2)](n) [btix = 1,4-bis(triazol-1-ylmethyl)benzene], with antiferromagnetic interactions occurring via the organic ligand, has been prepared and characterized. It has been shown to permit the exchange of anionic species in the crystalline network with modification of the magnetic properties. Coordinated BF(4)(-) can be reversibly exchanged by different anions with (NO(3)(-) and Cl(-)) or without (PF(6)(-) and ClO(4)(-)) dynamic response of the organic ligand, which acts as the only linker between the metal centers. Interestingly, an irreversible exchange occurs with N(3)(-) anions to generate a new coordination polymer, [Cu(btix)(…

AnionsModels MolecularIon exchangeMolecular StructureLigandCoordination polymerPolymersInorganic chemistryCationic polymerizationAb initioCrystallography X-RayMagnetic susceptibilitylaw.inventionInorganic Chemistrychemistry.chemical_compoundCrystallographyMagnetic FieldschemistrylawCationsOrganometallic CompoundsAntiferromagnetismPhysical and Theoretical ChemistryElectron paramagnetic resonanceCopperInorganic chemistry
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The Radical Trap in Atom Transfer Radical Polymerization Need Not Be Thermodynamically Stable. A Study of the MoX3(PMe3)3 Catalysts

2005

The molybdenum(III) coordination complexes MoX(3)(PMe(3))(3) (X = Cl, Br, and I) are capable of controlling styrene polymerization under typical atom transfer radical polymerization (ATRP) conditions, in conjunction with 2-bromoethylbenzene (BEB) as an initiator. The process is accelerated by the presence of Al(OPr(i))(3) as a cocatalyst. Electrochemical and synthetic studies aimed at identifying the nature of the spin trap have been carried out. The cyclic voltammogram of MoX(3)(PMe(3))(3) (X = Cl, Br, I) shows partial reversibility (increasing in the order ClBrI) for the one-electron oxidation wave. Addition of X(-) changes the voltammogram, indicating the formation of MoX(4)(PMe(3))(3) f…

AnionsReaction mechanismRadical polymerization010402 general chemistryPhotochemistry01 natural sciencesBiochemistryRedoxCatalysisStyreneCatalysisStyreneschemistry.chemical_compoundColloid and Surface ChemistryRadical polymerizationOxidationOrganic chemistry[CHIM.COOR]Chemical Sciences/Coordination chemistryRedox reactions010405 organic chemistryAtom-transfer radical-polymerizationGeneral Chemistry[CHIM.CATA]Chemical Sciences/Catalysis0104 chemical sciences[CHIM.POLY]Chemical Sciences/PolymersPolymerizationchemistryCyclic voltammetry
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Comparative analysis of the electrostatics of the binding of cationic proteins to vesicles: Asymmetric location of anionic phospholipids

2009

The role of electrostatics is studied in the adsorption of cationic proteins to zwitterionic phosphatidylcholine (PC) and anionic PC/phosphatidylglycerol (PG) mixed small unilamellarvesicles (SUVs). For model proteins the interaction is monitored vs. PG content at low ionic strength. The adsorption of lysozyme and myoglobin (isoelectric point, pl 7-11) is investigated in SUVs, along with changes of the fluorescence emission spectra of the cationic proteins, via their adsorption on SUVs. In the Gouy-Chapman formalism, the activity coefficient goes with the square of charge number. Deviations from the ideal model could indicate the asymmetric location of the anionic phospholipid in the bilaye…

AnionsStatic ElectricityFluorescence spectrometryAnalytical chemistryBiochemistryAnalytical Chemistrychemistry.chemical_compoundCationsEnvironmental ChemistryProtein–lipid interactionPhospholipidsUnilamellar LiposomesSpectroscopyMyoglobinChemistryBilayerOsmolar ConcentrationCationic polymerizationProteinsCharge numberPhosphatidylglycerolsCrystallographySpectrometry FluorescenceIsoelectric pointMyoglobinIonic strengthPhosphatidylcholinesMuramidaseProtein BindingAnalytica Chimica Acta
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Recent advances in electrochemical meso- and β-functionalization of porphyrins and electrografting of diazonium porphyrins

2020

Abstract Recent studies on electrochemical meso- and β-functionalization of porphyrins and electrografting of diazonium porphyrin are presented. First, the electrochemical oxidative C–C coupling between porphyrins will be presented, followed by the intermolecular and intramolecular meso- and β-substitutions of porphyrins. Then, the latest results on diazonium porphyrin electrografting will be reviewed.

Anodic nucleophilic substitution02 engineering and technology010402 general chemistryPhotochemistryElectrochemistry01 natural sciencesDiazonium-porphyrin electrograftingAnalytical ChemistryPorphyrinchemistry.chemical_compoundOrganic electrosynthesis[CHIM.ANAL]Chemical Sciences/Analytical chemistryElectrochemistry[CHIM.COOR]Chemical Sciences/Coordination chemistry[CHIM.ORGA]Chemical Sciences/Organic chemistryIntermolecular forceElectropolymerization[CHIM.MATE]Chemical Sciences/Material chemistry021001 nanoscience & nanotechnologyPorphyrin0104 chemical sciencesCoupling (electronics)chemistryIntramolecular forceSurface modification0210 nano-technology
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