Search results for "Zirconi"

showing 10 items of 413 documents

High‐Zirconium‐Content Nano‐Sized Bimodal Mesoporous Silicas

2006

Silica-based nanoparticulated bimodal mesoporous materials with high Zr content (43 ≥ Si/Zr ≥ 4) have been synthesized by a one-pot surfactant-assisted procedure from a hydroalcoholic medium using a cationic surfactant (CTMABr = cetyltrimethylammonium bromide) as structure-directing agent, and starting from molecular atrane complexes of Zr and Si as hydrolytic inorganic precursors. This preparative technique allows optimization of the dispersion of the Zr guest species in the silica walls. The bimodal mesoporous nature of the final high surface area nano-sized materials is confirmed by XRD, TEM, and N2 adsorption–desorption isotherms. The small intraparticle mesopore system (with pore sizes…

ZirconiumSupramolecular chemistryNanoparticlechemistry.chemical_elementInorganic Chemistrychemistry.chemical_compoundMesoporous organosilicaAtranechemistryChemical engineeringBromideOrganic chemistryCubic zirconiaMesoporous materialEuropean Journal of Inorganic Chemistry
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Evaluation of shear bond strength of zirconia to composite resin using different adhesive systems

2019

Background To evaluate shear bond strength of zirconia to composite resin using different universal and conventional adhesives and a zirconia primer. Material and methods Forty zirconia blocks were fabricated of zirconium ingots (10×10×5 mm) and sintered at 1530°C for 2 hours. They were then air-abraded with Al2O3 particles. The specimens were divided into 4 groups and subjected to one of the following bonding agents: Futurabond U (group 1), Clearfil Universal Bond, universal adhesives (group 2), Z-Prime Plus, zirconia primer (group 3) and Adper Single Bond 2, conventional adhesive (group 4). Composite resin was then applied in a diameter of 5 mm and in a thickness of 2 mm. All the specimen…

ZirconiumUniversal testing machineMaterials scienceResearchComposite numberchemistry.chemical_element030206 dentistry02 engineering and technologyEsthetic Dentistry021001 nanoscience & nanotechnology:CIENCIAS MÉDICAS [UNESCO]Crosshead03 medical and health sciences0302 clinical medicineDistilled waterchemistryGroup (periodic table)UNESCO::CIENCIAS MÉDICASCubic zirconiaAdhesiveComposite material0210 nano-technologyGeneral Dentistry
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ChemInform Abstract: Enantioselective Synthesis of Tertiary Alcohols Through a Zirconium-Catalyzed Friedel-Crafts Alkylation of Pyrroles with α-Ketoe…

2011

Chiral complexes of 1,1′-bi-2-naphthol-based ligands with zirconium tert-butoxide catalyze the Friedel–Crafts alkylation of pyrroles with α-ketoesters to afford tertiary alcohols in good yields and ee up to 98%. The reaction is also of application to 4,7-dihydroindole to give C2-alkylated indoles after oxidation with p-benzoquinone.

ZirconiumchemistryEnantioselective synthesischemistry.chemical_elementOrganic chemistryGeneral MedicineAlkylationFriedel–Crafts reactionTertiary alcoholsPyrrole derivativesCatalysisChemInform
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Enantioselective Synthesis of Tertiary Alcohols through a Zirconium-Catalized Friedel-Crafts Alkylation of Pyrroles with alpha-Ketoesters

2011

Chiral complexes of 1,10-bi-2-naphthol-based ligands with zirconium tert-butoxide catalyze the Friedel Crafts alkylation of pyrroles with R-ketoesters to afford tertiary alcohols in good yields and ee up to 98%. The reaction is also of application to 4,7-dihydroindole to give C2-alkylated indoles after oxidation with p-benzoquinone.

ZirconiumchemistryFISICA APLICADAOrganic ChemistryEnantioselective synthesischemistry.chemical_elementOrganic chemistryAlkylationTertiary alcoholsFriedel–Crafts reactionCatalysis
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ChemInform Abstract: Synthesis of Functionalized Indoles with a Trifluoromethyl-Substituted Stereogenic Tertiary Carbon Atom Through an Enantioselect…

2010

Chiral complexes of BINOL-based ligands with zirconium tert-butoxide catalyze the Friedel-Crafts alkylation reaction of indoles with beta-trifluoromethyl-alpha,beta-unsaturated ketones to give functionalized indoles with an asymmetric tertiary carbon center attached to a trifluoromethyl group. The reaction can be applied to a large number of substituted alpha-trifluoromethyl enones and substituted indoles. The expected products were obtained with good yields and ees of up to 99%.

Zirconiumchemistry.chemical_compoundCarbon atomTrifluoromethylchemistryEnantioselective synthesischemistry.chemical_elementGeneral MedicineAlkylationMedicinal chemistryFriedel–Crafts reactionPyrrole derivativesStereocenterChemInform
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Coupled Modelling of ZrO 2 /α-Zr(O) Layers Growth under Thermal and Mechanical Gradients

2019

The oxidation process of a nuclear reactor fuel rod clad made of zirconium is simulated. It is assumed that the oxygen is transported by anionic diffusion in the zirconia layer (ZrO2). Part of this oxygen reacts at the interface between the zirconia layer and the metal, while the rest diffuses in the oxygen-enriched metal volume (α-Zr(O)) to the core of the metal by an interstitial mechanism. The model is based on the thermodynamics of irreversible processes and takes into account the influence of driving forces on the oxygen migration in the metal such as the oxygen concentration gradient, the temperature gradient [1] and the mechanical stress gradient [2]. The growth of both ZrO2 and α-Zr…

[CHIM.INOR] Chemical Sciences/Inorganic chemistry[CHIM.MATE] Chemical Sciences/Material chemistryZirconium oxidationthermal-mechanical-diffusion coupled modellingnon-equilibrium thermodynamics
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Physical, chemical and mechanical evolution of the fuel-cladding interface in irradiated PWR fuel rods

2022

During the fuel irradiation in nuclear reactor, the fuel-cladding assembly is exposed to several irradiation-induced modifications. The fuel swelling coupled with cladding creep leads to a contact between the fuel and the cladding. The oxygen transport from the UO2 fuel to the zirconium layer induces progressively the Zr-cladding oxidation. This oxidation is initially local with the formation of islets. Then, with the increasing burnup of the fuel, it conducts to a continuous layer of about 8-µm thickness, localized at the fuel-cladding interface. At high burnup, zirconia growths anchor themselves in the periphery of the fuel (which is restructured) leading to pellet/cladding interlocking. …

[CHIM.MATE] Chemical Sciences/Material chemistryProduit de fissionCombustible nucléaireAlliage ZrMechanical properties[CHIM.MATE]Chemical Sciences/Material chemistryInterfaceCaractérisationsNuclear fuelPropriétés mécaniquesZirconiaPellet-Cladding interactionZirconeInteractions pastille-GaineZr alloysMicrostructure
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Contribution to the study of interaction between residual stress and oxygen diffusion in a deformable and reactive solid

2011

The aim of this PhD work is to highlight the interactions between the mechanical stress and the chemical composition within diffusion of matter process for a reactive solid. The chronological evolution of our work goes from a parametric numerical study to an experimental study and reveals the role of mechanical stresses on the oxygen diffusion process.Different origins of mechanical stress were first numerically analysed from the point of view of their impacts on the process of oxygen diffusion into a metal (Zr) or a ceramic (UO2) subjected to an oxidizing environment. This approach allowed us: to identify a surface treatment (shot-peening) able to generate a residual specific stress field,…

[SPI.OTHER]Engineering Sciences [physics]/OtherContraintes résiduelles[ SPI.OTHER ] Engineering Sciences [physics]/Other[SPI.OTHER] Engineering Sciences [physics]/OtherDiffusion de matièreNo english keywordCouplage diffusion – contraintes[CHIM.OTHE] Chemical Sciences/Other[ CHIM.OTHE ] Chemical Sciences/OtherZirconiumOxydationTraitements de surface[CHIM.OTHE]Chemical Sciences/OtherMorphologie d'interfaceGrenaillageSimulations numériques
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CCDC 205300: Experimental Crystal Structure Determination

2003

Related Article: J.C.Gallucci, S.Gentil, N.Pirio, P.Meunier, F.Gallou, L.A.Paquette|2003|Acta Crystallogr.,Sect.C:Cryst.Struct.Commun.|59|m67|doi:10.1107/S0108270103000751

bis(N-(35-Dimethylphenyl)-N-((eta5-isodicyclopentadien-2-yl)dimethylsilyl)amido-N)-zirconium(ii) diethyl ether solvateSpace GroupCrystallographyCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
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CCDC 1440373: Experimental Crystal Structure Determination

2016

Related Article: Adrien T. Normand, Constantin G. Daniliuc, Gerald Kehr, Pierre Le Gendre, Gerhard Erker|2016|Dalton Trans.|45|3711|doi:10.1039/C6DT00416D

bis(cyclopentadienyl)-(1-(2-(dicyclohexylphosphanyl)phenyl)-2-phenyldiazanediido)-zirconium(iv)Space GroupCrystallographyCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
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