Search results for "Acetonitrile"

showing 10 items of 1007 documents

CCDC 764821: Experimental Crystal Structure Determination

2013

Related Article: Susanta Hazra, Sagarika Bhattacharya, Mukesh Kumar Singh, Luca Carrella, Eva Rentschler, Thomas Weyhermueller, Gopalan Rajaraman, and Sasankasekhar Mohanta|2013|Inorg.Chem.|52|12881|doi:10.1021/ic400345w

(mu2-5511171723-Hexamethyl-371519-tetraazatricyclo[19.3.1.1913]hexacosa-1(25)279(26)101214192123-decaene-2526-diolato)-acetonitrile-aqua-bis(azido)-iron(iii)-nickel(ii) perchlorateSpace GroupCrystallographyCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
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CCDC 1047964: Experimental Crystal Structure Determination

2015

Related Article: Wdeson P. Barros, M. Luisa Calatayud, Francesc Lloret, Miguel Julve, Nadia Marino, Giovanni De Munno, Humberto O. Stumpf, Rafael Ruiz-García, Isabel Castro|2016|CrystEngComm|18|437|doi:10.1039/C5CE02058A

(mu2-Aqua)-(mu2-pyrazolato-NN')-bis(47-dimethyl-110-phenanthroline-NN')-di-copper(ii) diperchlorate acetonitrile solvate monohydrateSpace GroupCrystallographyCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
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CCDC 651347: Experimental Crystal Structure Determination

2008

Related Article: A.Cuevas, C.Kremer, L.Suescun, S.Russi, A.W.Mombru, F.Lloret, M.Julve, J.Faus|2007|Dalton Trans.||5305|doi:10.1039/b708927a

(mu~2~-Malonato-OO'O'')-tetrachloro-bis(29-dimethyl-110-phenanthroline)-cobalt(ii)-rhenium(iv) acetonitrile solvateSpace GroupCrystallographyCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
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CCDC 750190: Experimental Crystal Structure Determination

2011

Related Article: P.Albores, E.Rentschler|2010|Dalton Trans.|39|5005|doi:10.1039/b925214b

(mu~3~-Oxo)-pentakis(mu~2~-22-dimethylpropanoato-OO')-aqua-(22'-bipyridine-NN')-(22-dimethylpropanoato-OO')-cobalt(ii)-di-iron(iii) acetonitrile solvateSpace GroupCrystallographyCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
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CCDC 1919440: Experimental Crystal Structure Determination

2019

Related Article: Jana Anhäuser, Rakesh Puttreddy, Lukas Glanz, Andreas Schneider, Marianne Engeser, Kari Rissanen, Arne Lützen|2019|Chem.-Eur.J.|25|12294|doi:10.1002/chem.201903164

ΔΔΔ)-hexakis(mu-(RP)-NN'-[tricyclo[8.2.2.247]hexadeca-1(12)46101315-hexaene-512-diylbis(41-phenylene)]bis[1-(pyridin-2-yl)methanimine])-tetra-iron(ii) octakis(trifluoromethanesulfonate) acetonitrile unknown solvateSpace GroupCrystallographyCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
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Time-resolved photoisomerization of 1,1′-di-tert-butylstilbene and 1,1′-dicyanostilbene

2016

Abstract Photoisomerization of 1,1′-di-tert-butylstilbene ( 3 ) and 1,1′-dicyanostilbene ( 4 ) is monitored with stationary and broadband transient absorption spectroscopy. The electron affinity of the substituents correlates with the shift of the absorption band. The weak extinction of 3 complicates data interpretation, but comparison with earlier measured 1,1′-dimethylstilbene ( 1 ) and 1,1′-diethylstilbene ( 2 ) helps to assign transient spectra and relaxation paths. For 3 a long-lived perpendicular state P is observed with lifetime τ P  = 134 ps in acetonitrile. For 4 τ P  = 2.1 ps in acetonitrile and 27 ps in n-hexane, the difference indicating a substantial dipole moment (∼3D) of the …

010304 chemical physicsPhotoisomerizationChemistryRelaxation (NMR)Analytical chemistryGeneral Physics and Astronomy010402 general chemistry01 natural sciences0104 chemical sciencesDipolechemistry.chemical_compoundAbsorption bandElectron affinity0103 physical sciencesUltrafast laser spectroscopyPhysical and Theoretical ChemistrySpectroscopyAcetonitrileChemical Physics Letters
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Catalytic epoxidation using dioxidomolybdenum(VI) complexes with tridentate aminoalcohol phenol ligands

2019

Reaction of the tridentate aminoalcohol phenol ligands 2,4-di-tert-butyl-6-(((2 hydroxyethyl)(methyl)amino)methyl)phenol (H2L1) and 2,4-di-tert-butyl-6-(((1-hydroxybutan-2-yl)amino)methyl)phenol (H2L2) with [MoO2(acac)2] in methanol solutions resulted in the formation of [MoO2(L1)(MeOH)] (1) and [MoO2(L2)(MeOH)] (3), respectively. In contrast, the analogous reactions in acetonitrile afforded the dinuclear complexes [Mo2O2(μ-O)2(L1)2] (2) and [Mo2O2(μ-O)2(L2)2] (4). The corresponding reactions with the potentially tetradentate ligand 3-((3,5-di-tert-butyl-2-hydroxybenzyl)(methyl)amino)propane-1,2-diol (H3L3) led to the formation of the mononuclear complex [MoO2(L3)(MeOH)] (5) in methanol whi…

010402 general chemistry01 natural sciencesMedicinal chemistryCatalysisInorganic Chemistrychemistry.chemical_compoundkatalyytitepoxidationMaterials ChemistryPhenolMoietyPhysical and Theoretical ChemistryHydrogen peroxideAcetonitrileta116010405 organic chemistryLigandmolybdenum complexSubstrate (chemistry)kompleksiyhdisteettrinuclear structure0104 chemical scienceschemistrytridentate ligandMethanolmolybdeeniInorganica Chimica Acta
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2,4,5-Triaryl imidazole probes for the selective chromo-fluorogenic detection of Cu(II). Prospective use of the Cu(II) complexes for the optical reco…

2019

The sensing behaviour toward metal cations and biothiols of two 2,4,5-triarylimidazole probes (3a and 3b) is tested in acetonitrile and in acetonitrile-water. In acetonitrile the two probes present charge-transfer absorption bands in the 320-350 nm interval. Among all cations tested only Cu(11) is able to induce bathochromic shifts of the absorption band in the two probes, which is reflected in marked colour changes. Colour modulations are ascribed to the formation of 1:1 Cu(II)-probe complexes in which the cation interacts with the imidazole acceptor heterocycle. Besides, the two probes present intense emission bands (at 404 and 437 nm for 3a and 3b respectively) in acetonitrile that are q…

010402 general chemistryPhotochemistryCu(II) detection01 natural sciencesCu(II) imagingInorganic ChemistryMetalchemistry.chemical_compoundBathochromic shiftMaterials ChemistryImidazolePhysical and Theoretical ChemistryAcetonitrileImidazole-based probesAqueous solutionScience & Technology010405 organic chemistryGSH imagingAcceptor0104 chemical sciences3. Good healthchemistryAbsorption bandvisual_artvisual_art.visual_art_mediumHypsochromic shiftBiothiols recognition
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2020

The course of organic chemical reactions is efficiently modelled through the concepts of “electrophiles” and “nucleophiles” (meaning electron-seeking and nucleus-seeking reactive species). On the one hand, an advanced approach of the correlation of the nucleophilicity parameters N and electrophilicity E has been delivered from the linear free energy relationship log k (20 °C) = s(N + E). On the other hand, the general influence of the solvent mixtures, which are very often employed in preparative synthetic chemistry, has been poorly explored theoretically and experimentally, to date. Herein, we combined experimental and theoretical studies of the solvent influence on pyrrolidine nucleophili…

010405 organic chemistryChemistryGeneral Chemical EngineeringSolvationGeneral ChemistryFree-energy relationship010402 general chemistry01 natural sciencesPyrrolidine0104 chemical sciencesSolventchemistry.chemical_compoundComputational chemistryNucleophilic substitutionDensity functional theorySolvent effectsAcetonitrileRSC Advances
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A Strongly Luminescent Chromium(III) Complex Acid

2018

The synthesis, structure, reactivity, and photophysical properties of a novel acidic, luminescent chromium(III) complex [Cr(H2 tpda)2 ]3+ (23+ ) bearing the tridentate H2 tpda (2,6-bis(2-pyridylamino)pyridine) ligand are presented. Excitation of 23+ at 442 nm results in strong, long-lived NIR luminescence at 782 nm in water and in acetonitrile. X-ray diffraction analysis and IR spectroscopy reveal hydrogen-bonding interactions of the counter ions to the NH groups of 23+ in the solid state. Deprotonation of the NH groups of 23+ by using a non-nucleophilic Schwesinger base in CH3 CN switches off the luminescence. Re-protonation by using HClO4 restores the emission. In water, the pKa value of …

010405 organic chemistryChemistryOrganic ChemistryQuantum yieldInfrared spectroscopychemistry.chemical_elementGeneral Chemistry010402 general chemistryPhotochemistry01 natural sciencesCatalysis0104 chemical scienceschemistry.chemical_compoundChromiumDeprotonationPyridineHydroxideLuminescenceAcetonitrileChemistry - A European Journal
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