Search results for "Aluminate"

showing 8 items of 38 documents

CCDC 216054: Experimental Crystal Structure Determination

2004

Related Article: S.Arndt, T.P.Spaniol, J.Okuda|2003|Angew.Chem.,Int.Ed.|42|5075|doi:10.1002/anie.200352532

Space GroupCrystallographyCrystal SystemCrystal StructureCell Parametersbis(Trimethylsilylmethyl)-tetrakis(tetrahydrofuran)-yttrium tetrakis(trimethylsilylmethyl)aluminateExperimental 3D Coordinates
researchProduct

Synthesis and Structural Characterization of (1,4-Dihydropyrid-1-yl)aluminum Complexes

1999

The reaction between LiAlH(4) and pyridine, 4-methylpyridine, or 3,5-dimethylpyridine results in hydride transfer to the pyridine ring to give tetrakis(pyridine)lithium tetrakis(1,4-dihydropyrid-1-yl)aluminate(III), 1, tetrakis(4-methylpyridine)lithium tetrakis(1,4-dihydro-4-methylpyrid-1-yl)aluminate(III), 2, or tetrakis(3,5-dimethylpyridine)lithium tetrakis(3,5-dimethyl-1,4-dihydropyrid-1-yl)aluminate(III), 3, respectively. We claim that 1, instead of lithium tetrakis(1,4-dihydropyrid-1-yl)aluminate(III), is the compound which is known as Lansbury's reagent. Treatment of trimethylamine-alane, AlH(3).NMe(3), with pyridine yields tris(1,4-dihydropyrid-1-yl)(pyridine)aluminum, 4. It could be…

TrisHydrideAluminateInorganic chemistrychemistry.chemical_elementCrystal structureRing (chemistry)Medicinal chemistryInorganic Chemistrychemistry.chemical_compoundchemistryReagentPyridineLithiumPhysical and Theoretical ChemistryInorganic Chemistry
researchProduct

Water-Tolerant Trifloaluminate Ionic Liquids: New and Unique Lewis Acidic Catalysts for the Synthesis of Chromane

2018

The first example of triflometallate ionic liquids, named in analogy to chlorometallate ionic liquids, is reported. Trifloaluminate ionic liquids, synthesised from 1-alkyl-3-methylimidazolium triflates and aluminium triflate, were characterised by multinuclear NMR spectroscopy and FT-IR spectroscopy, revealing the existence of oligonuclear, multiply-charged trifloaluminate anions, with multiple bridging triflate modes. Acceptor numbers were determined to quantify their Lewis acidity, rendering trifloaluminate ionic liquids as medium-strength Lewis acids (AN = ca. 65). Used as acidic catalysts in the cycloaddition of 2,4-dimethylphenol and isoprene (molar ratio 2:1) to prepare chromane, trif…

carbon nanotubes010405 organic chemistrymetal triflatesGeneral ChemistryNuclear magnetic resonance spectroscopy010402 general chemistry01 natural sciencesAcceptor0104 chemical sciencesCatalysislcsh:ChemistryChemistrychemistry.chemical_compoundchromanelcsh:QD1-999chemistrytrifloaluminate ionic liquidsPolymer chemistryIonic liquidChromaneLewis acids and basesSILPTrifluoromethanesulfonateIsopreneOriginal Research
researchProduct

Biphasic ethylene polymerisation using ionic liquid over a titanocene catalyst activated by an alkyl aluminium compound

2007

Abstract 1-n-Butyl-3-methylimidazolium tetrachloroaluminate ([BMIM]+[AlCl4]−) was applied to biphasic ionic liquid/hexane ethylene polymerisation as a medium of the Cp2TiCl2 titanocene catalyst activated by alkylaluminium compounds (MAO, AlEt2Cl, AlEt3). The best results were obtained using AlEt2Cl. The results show that catalyst recycling, higher ethylene pressure, and greater Al/Ti molar ratio along with a greater volume of the ionic liquid phase enhance catalyst activity. The polyethylene gathered from the hexane phase is characterised primarily by its high purity. Its physical properties remain polyethylene obtained over a heterogeneous metallocene catalyst. Thus, biphasic ionic liquid …

chemistry.chemical_classificationEthylenePolymers and PlasticsBiphasic processOrganic ChemistryMetallocene catalystGeneral Physics and AstronomyPolyethylenePost-metallocene catalystIonic liquidEthylene polymerisationCatalysischemistry.chemical_compoundchemistryTetrachloroaluminateIonic liquidPolymer chemistryMaterials ChemistryMetalloceneAlkylEuropean Polymer Journal
researchProduct

Biphasic ethylene polymerisation using 1-n-alkyl-3-methylimidazolium tetrachloroaluminate ionic liquid as a medium of the Cp2TiCl2 titanocene catalyst

2008

Abstract A systematic analysis was performed on a series of 1- n -alkyl-3-methylimidazolium tetrachloroaluminates (where alkyl = ethyl, butyl, hexyl, and octyl), applied as a medium of the Cp 2 TiCl 2 titanocene catalyst, to evaluate the influence of the physical properties of the ionic liquids on the polymerisation reaction carried out in the biphasic ionic liquid/hexane mode. Two alkylaluminium compounds, AlEtCl 2 and AlEt 2 Cl, were used as activators. The influence of the activator/catalyst molar ratio on the performance of the ethylene polymerisation was determined for each ionic liquid studied. The best results were obtained using 1- n -octyl-3-methylimidazolium tetrachloroaluminate. …

chemistry.chemical_classificationPolymers and PlasticsOrganic ChemistryGeneral Physics and AstronomySolution polymerizationPost-metallocene catalystCatalysischemistry.chemical_compoundchemistryPolymerizationTetrachloroaluminateIonic liquidPolymer chemistryMaterials ChemistryMetalloceneAlkylEuropean Polymer Journal
researchProduct

Electrochemical characterization of cobalt cordierites attached to paraffin-impregnated graphite electrodes

2004

The electrochemistry of α, β and μ cobalt-containing cordierites (Co2Al4Si5O18) attached to paraffin-impregnated graphite electrodes has been studied by linear scan and cyclic voltammetries in HCl+NaCl and NaOH electrolytes. This electrochemistry is compared with that of vitreous cobalt cordierite, cobalt(II) oxide and cobalt spinel aluminate (CoAl2O4), the two last taken as reference materials. Electrochemical processes involve the site-characteristic reduction of Co(II) species to cobalt metal near to −0.5 V vs. SCE and their oxidative dissolution near +0.3 V, accompanied by solid state interconversion between Co(II) and Co(III) at potentials above +0.45 V. Cordierite-modified electrodes …

inorganic chemicalsAluminateInorganic chemistryOxidechemistry.chemical_elementElectrolyteCondensed Matter PhysicsElectrochemistrychemistry.chemical_compoundchemistryElectrodeElectrochemistryGeneral Materials ScienceElectrical and Electronic EngineeringCobaltDissolutionVoltammetryJournal of Solid State Electrochemistry
researchProduct

Production of Phosphorescent Coatings on 6082 Aluminum Using Sr0.95Eu0.02Dy0.03Al2O4-δ Powder and Plasma Electrolytic Oxidation

2019

In this study, a new approach for producing phosphorescent aluminum coatings was studied. Using the plasma electrolytic oxidation (PEO) process, a porous oxide coating was produced on the Al6082 aluminum alloy substrate. Afterwards, activated strontium aluminate (SrAl2O4: Eu2+, Dy3+) powder was filled into the cavities and pores of the PEO coating, which resulted in a surface that exhibits long-lasting luminescence. The structural and optical properties were studied using XRD, SEM, and photoluminescence measurements. It was found that the treatment time affects the morphology of the coating, which influences the amount of strontium aluminate powder that can be incorporated into the coating …

inorganic chemicalsMaterials scienceMorphology (linguistics)Photoluminescencechemistry.chemical_element02 engineering and technologyengineering.material01 natural scienceschemistry.chemical_compoundCoatingPlasma electrolytic oxidation (PEO)Aluminium0103 physical sciencesLuminescent coatings:NATURAL SCIENCES:Physics [Research Subject Categories]Materials Chemistry010302 applied physicsAluminum 6082aluminum 6082Phosphorescencetechnology industry and agricultureStrontium aluminateSurfaces and InterfacesPlasma electrolytic oxidationplasma electrolytic oxidation (PEO)021001 nanoscience & nanotechnologySurfaces Coatings and Filmsphosphorescenceluminescent coatingschemistryChemical engineeringengineering0210 nano-technologyLuminescencePhosphorescenceCoatings
researchProduct

The Effect of Electrolytic Solution Composition on the Structure, Corrosion, and Wear Resistance of PEO Coatings on AZ31 Magnesium Alloy

2020

Plasma electrolytic oxidation coatings were prepared in aluminate, phosphate, and silicate-based electrolytic solutions using a soft-sparking regime in a multi-frequency stepped process to compare the structure, corrosion, and wear characteristics of the obtained coatings on AZ31 magnesium alloy. The XRD results indicated that all coatings consist of MgO and MgF2, while specific products such as Mg2SiO4, MgSiO3, Mg2P2O7, and MgAl2O4 were also present in specimens based on the selected solution. Surface morphology of the obtained coatings was strongly affected by the electrolyte composition. Aluminate-containing coating showed volcano-like, nodular particles and craters distributed over the …

wearAZ31 Mg alloyMaterials scienceplasma electrolytic oxidationAluminateOxideElectrolyteengineering.materialCorrosionchemistry.chemical_compoundCoatingaluminateMaterials ChemistryMagnesium alloyComposite materialPorosityphosphatecorrosionsilicateAluminate AZ31 Mg alloy Corrosion Phosphate Plasma electrolytic oxidation Silicate WearSurfaces and InterfacesPlasma electrolytic oxidationSurfaces Coatings and FilmsSettore ING-IND/23 - Chimica Fisica Applicatachemistrylcsh:TA1-2040engineeringlcsh:Engineering (General). Civil engineering (General)Coatings
researchProduct