Search results for "I+D+i"

showing 10 items of 26665 documents

Selective Formation of 4,4'-Biphenols by Anodic Dehydrogenative Cross- and Homo-Coupling Reaction.

2019

A simple and selective electrochemical synthesis by dehydrogenative coupling of unprotected 2,6- or 2,5-substituted phenols to the desired 4,4'-biphenols is reported. Using electricity as the oxidizing reagent avoids pre-functionalization of the starting materials, since a selective activation of the substrates takes place. Without the necessity for metal-catalysts or the use of stoichiometric reagents it is an economic and environmentally friendly transformation. The elaborated electrochemical protocol leads to a broad variety of the desired 4,4'-biphenols in a very simplified manner compared to classical approaches. This is particular the case for the cross-coupled products.

010405 organic chemistryChemistryOrganic ChemistryGeneral Chemistry010402 general chemistryElectrochemistry01 natural sciencesEnvironmentally friendlyCombinatorial chemistryCatalysisCoupling reaction0104 chemical sciencesAnodeReagentOxidizing agentDehydrogenationStoichiometryChemistry (Weinheim an der Bergstrasse, Germany)
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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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Aza and cyanobridged tripodal dinuclear copper(II) complexes: Electrochemical studies and structural evidence for an original azacyanocarbanion

2014

International audience; The reactivity of the mononuclear [Cu(TMPA)(L)] n+ complex (TMPA: tris(2-methylpyridine) amine, L: CH3CN, H2O) towards two different bridging species (tetracyanoethylene, 4,40-bipyridine) was investigated. The dinuclear complex [(mu-4,40-bipy)Cu-II(TMPA)(2)](CF3SO3)(4) (1) was synthesised and analysed by Xray diffraction (XRD). Magnetic studies revealed that this derivative displays very weak antiferromagnetic interactions between the two metal centres (2J = -0.69 cm(-1)). Solution studies (EPR spectroscopy and voltammetry) evidenced the lability of the bridged neutral bipyridine ligand in acetonitrile. The reaction of TCNE (TCNE: tetracyanoethylene) with the copper(…

010405 organic chemistryChemistryStereochemistrychemistry.chemical_elementCrystal structureTetracyanoethylene010402 general chemistryElectrochemistry01 natural sciencesCopper0104 chemical scienceslaw.inventionInorganic Chemistrychemistry.chemical_compoundCrystallographyBipyridinelaw[CHIM.ANAL]Chemical Sciences/Analytical chemistryMaterials ChemistryAmine gas treating[CHIM.COOR]Chemical Sciences/Coordination chemistryPhysical and Theoretical ChemistryElectron paramagnetic resonanceAcetonitrile
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The C–I···–O–N+ Halogen Bonds with Tetraiodoethylene and Aromatic N-Oxides

2020

The nature of C–I⋯⁻O–N⁺ interactions, first of its kind, between non-fluorinated tetraiodoethylene XB-donor and pyridine N-oxides (PyNO) are studied by single-crystal X-ray diffraction (SCXRD) and ...

010405 organic chemistryChemistryTetraiodoethyleneGeneral Chemistry010402 general chemistryCondensed Matter Physics01 natural sciences0104 chemical sciences3. Good healthCrystallographychemistry.chemical_compoundHalogenPyridineGeneral Materials ScienceCrystal Growth & Design
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Insight into the Mechanism of Water Adsorption/Desorption in Hydrophilic Viologen-Carboxylate Based PCP

2017

A water stable and highly hydrophilic porous coordination polymer based on viologen-carboxylate type ligand, the 4,4′-bipyridinium,1,1-bis(3-carboxyphenyl) (pc2), is obtained by the solvothermal method: [Cd3(pc2) (BTC)2(H2O)2]·6H2O ([1(H2O)2]·6H2O; BTC3– = 1,3,5-carboxybenzene). Its crystal structure and the ones of two partially dehydrated phases have been determined, allowing insight into the mechanism of water adsorption/desorption of this PCP material. It is shown that the dehydrated compound [1] first adsorbs two water molecules which fill the pores, leading to [1]·2H2O. On the other hand, the partial dehydration of the as-synthesized compound leads to the intermediate phase [1(H2O)]·3…

010405 organic chemistryCoordination polymerLigandInorganic chemistryGeneral ChemistryCrystal structure010402 general chemistryCondensed Matter Physics01 natural sciences0104 chemical sciences[CHIM.THEO]Chemical Sciences/Theoretical and/or physical chemistrychemistry.chemical_compoundAdsorptionchemistryDesorptionPolymer chemistryMoleculeGeneral Materials ScienceCarboxylatePyridiniumComputingMilieux_MISCELLANEOUSCrystal Growth & Design
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Tetracationic and Tetraanionic Manganese Porphyrins: Electrochemical and Spectroelectrochemical Characterization

2017

International audience; The electrochemistry and spectroelectrochemistry of four tetrapositively charged and two tetranegatively charged porphyrins were characterized in two nonaqueous solvents (dimethyl sulfoxide and N,N-dimethylformamide) containing 0.1 M tetra-n-butylammonium perchlorate. The tetrapositively charged compounds are represented by the tetrapyridylporphyrins [TRPyPM]4+(X-)4, where R is a methyl or [2-[2-(2-methoxy)ethoxy]ethoxy]ethyl group, M = MnIIII, MnIIICl, CuII, or PdII, and X = I- or Cl-. The tetranegatively charged porphyrins are represented by the tetrasulfonato derivatives [TPPSMn(OAc)]4-(NH4+)4 and [TArPSMn(OAc)]4-(NH4+)4, where Ar = 4-O-[2-[2-(2-methoxy)ethoxy]eth…

010405 organic chemistryDimethyl sulfoxidechemistry.chemical_element[ CHIM.INOR ] Chemical Sciences/Inorganic chemistryManganese[CHIM.INOR]Chemical Sciences/Inorganic chemistry010402 general chemistryElectrochemistryPhotochemistry01 natural sciencesMedicinal chemistry0104 chemical sciencesInorganic Chemistrychemistry.chemical_compoundPerchloratechemistry13. Climate actionAlkoxy groupPyridiniumEthyl groupPhysical and Theoretical Chemistry
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Opening of New Synthetic Routes Using Segmented Microflow in Multistep Syntheses

2017

The application of microfluidics in organic chemistry is a valuable tool to access new synthesis pathways and to break limitations set by traditional batch chemistry. In the past, the majority of research focused on solving problems associated with individual reactions. It is necessary to advance the field by incorporating flow chemistry in longer multistep syntheses to open more direct paths towards complicated compounds. Several strategies were developed to meet the demands of a four-step synthesis, which includes biphasic nitrations, gaseous substrates, and very fast reactions on multifunctional molecules. A unique micro flow setup was applied in each reaction to meet its specific requir…

010405 organic chemistryGeneral Chemical EngineeringMicrofluidicsGeneral ChemistryFlow chemistryBiochemical engineering010402 general chemistry01 natural sciencesIndustrial and Manufacturing Engineering0104 chemical sciencesChemical Engineering & Technology
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Equipping metallo-supramolecular macrocycles with functional groups: Assemblies of pyridine-substituted urea ligands

2012

A series of di-(m-pyridyl)-urea ligands were prepared and characterized with respect to their conformations by NOESY experiments and crystallography. Methyl substitution in different positions of the pyridine rings provides control over the position of the pyridine N atoms relative to the urea carbonyl group. The ligands were used to self-assemble metallo-supramolecular M(2)L(2) and M(3)L(3) macrocycles which are generated in a finely balanced equilibrium in DMSO and DMF according to DOSY NMR experiments and ESI FTICR mass spectrometry. Again, crystallography was used to characterize the assemblies. Methyl substitution in positions next to the pyridine nitrogen prevents coordination, while …

010405 organic chemistryHydrogen bondChemistryStereochemistrySupramolecular chemistryurea ligands; metallo-supramolecular macrocycles; X-ray structure; hydrogen-bonding010402 general chemistryMass spectrometry01 natural sciencesFourier transform ion cyclotron resonance0104 chemical sciencesInorganic ChemistrySubstituted ureaCrystallographychemistry.chemical_compoundPyridineUreaTwo-dimensional nuclear magnetic resonance spectroscopyta116Dalton Transactions
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2017

The title compound, C12H9BrN2O3, was prepared in two steps from 2-chloro-3-nitropyridine. The nitrobiaryl unit is twisted, with dihedral angles of 35.4 (5)° between the nitro substituent and the pyridine ring to which it is bound, and 51.0 (5)° between the nitro group and the benzene ring. In the crystal, the molecules are connectedviaC—H...O hydrogen bonds, forming strands along theb-axis direction.

010405 organic chemistryHydrogen bondSubstituentCrystal structureDihedral angle010403 inorganic & nuclear chemistryRing (chemistry)01 natural sciences0104 chemical sciencesCrystallographychemistry.chemical_compoundchemistryPyridineNitroBenzeneIUCrData
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Ion-Pair Complexation with Dibenzo[21]Crown-7 and Dibenzo[24]Crown-8 bis-Urea Receptors

2016

Synthesis and ion-pair complexation properties of novel ditopic bis-urea receptors based on dibenzo[21]crown-7 (R(1) ) and dibenzo[24]crown-8 (R(2) ) scaffolds have been studied in the solid state, solution, and gas phase. In a 4:1 CDCl3 /[D6 ]DMSO solution, both receptors clearly show positive heterotropic cooperativity toward halide anions when complexed with Rb(+) or Cs(+) , with the halide affinity increasing in order I(-) <Br(-) <Cl(-) . In solution, the rubidium complexes of both receptors have higher halide affinities compared to the caesium complexes. However, Rb(+) and Cs(+) complexes of R(2) show stronger affinities toward all the studied anions compared to the corresponding catio…

010405 organic chemistryHydrogen bondion-pair receptorscrown ethersOrganic ChemistryInorganic chemistrySupramolecular chemistrychemistry.chemical_elementHalideCooperativityGeneral ChemistryCrystal structure010402 general chemistry01 natural sciencesditopic receptorsCatalysis0104 chemical sciencesRubidiumCrystallographychemistryCaesiumbis-urea receptorsSelectivityta116Chemistry - A European Journal
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