Search results for "010402 general chemistry"

showing 10 items of 6896 documents

Diversity of Isomerization Patterns and Protolytic Forms in Aminocarbene PdII and PtII Complexes Formed upon Addition of N,N′-Diphenylguanidine to Me…

2017

Reaction of the palladium(II) and platinum(II) isocyanide complexes cis-[MCl2(CNR)2] [M = Pd, R = C6H3(2,6-Me2) (Xyl), 2-Cl-6-MeC6H3, cyclohexyl (Cy), t-Bu, C(Me)2CH2(Me)3 (1,1,3,3-tetramethylbuth-1-yl abbreviated as tmbu); M = Pt, R = Xyl, 2-Cl-6-MeC6H3, Cy, t-Bu, and tmbu] with N,N′-diphenylguanidine (DPG) leads to DPG-derived metal-bound deprotonated acyclic diaminocarbene (ADC) species. This reaction occurs via a two-step process, involving the initial coupling of the guanidine with one of the isocyanides and leading to deprotonated monocarbene monochelated species, while the next addition grants the deprotonated bis-carbene bis-chelated metal compounds. DPG behaves as nucleophile, depr…

protolytic forms010405 organic chemistryStereochemistryIsocyanideOrganic ChemistrySubstituentchemistry.chemical_elementRegioselectivityaminocarbene complexes010402 general chemistry01 natural sciencesMedicinal chemistry0104 chemical sciencesdiversityInorganic Chemistrychemistry.chemical_compoundDeprotonationchemistryNucleophileisomerization patternsPhysical and Theoretical ChemistryGuanidineIsomerizationta116PalladiumOrganometallics
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Multifacial Recognition in Binary and Ternary Cocrystals from 5-Halouracil and Aminoazine Derivatives

2018

A systematic analysis using single crystal X-ray diffraction was performed to explore the role exerted by potential intercomponent proton-transfer reactions in the supramolecular structures of A–B cocrystals formed by 5-haloderivatives of uracil (A), coupled with 2-aminoadenine simulants (aminoazines, B). Twelve new heterodimers were synthesized in different stoichiometries and cocrystallized by solvent cogrinding followed by solution crystallization. In the binary cocrystals, uracil or 1-methyluracil with halide modification at the 5 position (F, Cl, Br, I) was coupled with amino-aromatic N-heterocycles (melamine, 2,4,6-triaminopyrimidine, 2,6-diaminopyridine) as a multivalent site for pyr…

proton transferPyrimidineX ray diffractionSupramolecular chemistry010402 general chemistry01 natural sciencesaromatic compounds; hydrogen bonds; ionization; proton transfer; X ray diffractionNucleobaselaw.inventionchemistry.chemical_compoundlawionizationsingle crystal X-raysGeneral Materials ScienceCrystallizationta116orgaaniset yhdisteet010405 organic chemistryHydrogen bondChemistryaromatic compoundsUracilGeneral ChemistrykiteetCondensed Matter Physics0104 chemical sciencesCrystallographyhalogen bondinghydrogen bondsTernary operationSingle crystalCrystal Growth & Design
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Exploring fast proton transfer events associated with lateral proton diffusion on the surface of membranes

2019

Proton diffusion (PD) across biological membranes is a fundamental process in many biological systems, and much experimental and theoretical effort has been employed for deciphering it. Here, we report on a spectroscopic probe, which can be tightly tethered to the membrane, for following fast (nanosecond) proton transfer events on the surface of membranes. Our probe is composed of a photoacid that serves as our light-induced proton source for the initiation of the PD process. We use our probe to follow PD, and its pH dependence, on the surface of lipid vesicles composed of a zwitterionic headgroup, a negative headgroup, a headgroup that is composed only from the negative phosphate group, or…

protonitkalvot (orgaaniset objektit)ProtonDiffusionNon-equilibrium thermodynamics02 engineering and technologylipidit010402 general chemistryKinetic energy01 natural sciencesdiffuusioMolecular dynamicsdiffuusio (fysikaaliset ilmiöt)proton diffusionmolekyylidynamiikkata116MultidisciplinaryChemistryBiological membraneNanosecondphotoacid021001 nanoscience & nanotechnologymolecular dynamics0104 chemical scienceslipid vesiclesMembraneexcited-state proton transferPNAS PlusChemical physicslipids (amino acids peptides and proteins)0210 nano-technologyProceedings of the National Academy of Sciences
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Energy level determination of purine containing blue light emitting organic compounds

2018

Organic light emitting diodes (OLED) have found their applications in the mobile and TV screens. Till now the commercially available diodes are made by expensive thermal evaporation in a vacuum. The costs of OLED fabrication could be decreased by applying low-cost wet casting methods, for example, spin-coating. In this work, we have studied a group of blue light emitting purine derivatives which could potentially be used in OLEDs. The advantage of these compounds is their ability to form amorphous thin films from solutions. All the thin films were prepared by the spincoating method from chloroform solution on ITO glass. The position of hole and electron transport energy levels is important …

purinechemistry.chemical_classificationMaterials sciencePhotoconductivityAnalytical chemistryphotoelectron emission02 engineering and technologyElectron acceptor010402 general chemistry021001 nanoscience & nanotechnology7. Clean energy01 natural sciencesElectron transport chain0104 chemical sciencesAmorphous solidOLEDchemistryElectron affinity:NATURAL SCIENCES:Physics [Research Subject Categories]OLEDphotoconductivityenergy levelsIonization energyThin film0210 nano-technologyOrganic Electronics and Photonics: Fundamentals and Devices
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Intramolecular Hydrogen Bond, Hirshfeld Analysis, AIM; DFT Studies of Pyran-2,4-dione Derivatives

2021

Intra and intermolecular interactions found in the developed crystals of the synthesized py-ron-2,4-dione derivatives play crucial rules in the molecular conformations and crystal stabili-ties, respectively. In this regard, Hirshfeld calculations were used to quantitatively analyze the different intermolecular interactions in the crystal structures of some functionalized py-ran-2,4-dione derivatives. The X-ray structure of pyran-2,4-dione derivative namely (3E,3′E)-3,3′-((ethane-1,2-diylbis(azanediyl))bis(phenylmethanylylidene))bis(6-phenyl-2H-pyran-2,4(3H)-dione) was determined. It crystallized in the monoclinic crystal system and C2/c space group with unit cell parameters: a = 14.0869(4) …

pyran-24-dioneGeneral Chemical Engineeringintramolecular hydrogen bondCrystal structure010402 general chemistryDFT01 natural sciencesInorganic Chemistrykemialliset sidoksetAIMMoleculeGeneral Materials Scienceorgaaniset yhdisteetCrystallography010405 organic chemistryHydrogen bondChemistryChemical shiftAtoms in moleculesIntermolecular forceHirshfeld analysiskiteetCondensed Matter Physics0104 chemical sciencesatomitCrystallographyQD901-999Intramolecular forceMonoclinic crystal systemCrystals
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(E)-1-(Pyridin-4-yl)propan-1-one oxime

2016

The asymmetric unit of the title compound, C8H10N2O, contains two crystallographically independent molecules of slightly different conformation, which are linkedviaan intermolecular O—H...N hydrogen bond. The dihedral angle between the pyridine ring and the oxime plane of moleculeA[2.09 (19)°] is smaller than in moleculeB[16.50 (18)°].

pyridinecrystal structure010405 organic chemistryChemistryStereochemistryHydrogen bondGeneral MedicineCrystal structureDihedral angle010402 general chemistryOximeRing (chemistry)01 natural sciencesoxime0104 chemical sciencesCrystallographychemistry.chemical_compoundPyridinelcsh:QD901-999lcsh:CrystallographyIUCrData
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(E)-1-(Pyridin-4-yl)propan-1-one O-tosyl oxime

2017

The title compound, C15H16N2O3S, was obtained by the reaction of (E)-1-(pyridin-4-yl)propan-1-one oxime andpara-toluenesulfonic acid. The pyridine ring makes a dihedral angle of 54.70 (10)° with the benzene ring. In the crystal, molecules are linked by C—H...O hydrogen bonds, forming a chain along thec-axis direction.

pyridinecrystal structureHydrogen bondCrystal structureDihedral angle010402 general chemistry010403 inorganic & nuclear chemistryRing (chemistry)Oximehydrogen bonding01 natural sciences0104 chemical sciencesCrystalchemistry.chemical_compoundCrystallographytosyl oximechemistryTosylPyridinelcsh:QD901-999lcsh:CrystallographyIUCrData
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Crystal structure of the pyridine–diiodine (1/1) adduct

2015

In the title adduct, C5H5N·I2, the N—I distance [2.424 (8) Å] is remarkably shorter than the sum of the van der Waals radii. The line through the I atoms forms an angle of 78.39 (16)° with the normal to the pyridine ring.

pyridinecrystal structureNanotechnology02 engineering and technologyCrystal structure010402 general chemistryRing (chemistry)01 natural sciencesAdductlcsh:Chemistrysymbols.namesakechemistry.chemical_compoundPyridineGeneral Materials ScienceVan der Waals radiusta116Halogen bondChemistryGeneral Chemistry021001 nanoscience & nanotechnologyCondensed Matter PhysicsData Reports3. Good health0104 chemical sciencesCrystallographylcsh:QD1-999halogen bondingsymbols0210 nano-technologydiiodine
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3-(2,4-Difluorophenyl)-1-(pyridin-4-yl)benzo[4,5]imidazo[1,2-d][1,2,4]triazin-4(3H)-one

2016

In the title compound, C20H11F2N5O, the central 13-membered ring system (r.m.s. deviation = 0.028 Å) makes a dihedral angle of 53.13 (7)° with the difluorophenyl ring and 79.98 (7)° with the pyridine ring. The crystal packing features aromatic π–π interactions between the 13-membered rings [shortest distance between ring centroids = 3.5682 (8) Å].

pyridinecrystal structureShortest distanceStereochemistryChemistryGeneral MedicineCrystal structuredifluorophenylDihedral angle010402 general chemistry010403 inorganic & nuclear chemistryRing (chemistry)01 natural sciences124-triazinone0104 chemical sciencesbenzoimidazoleCrystalCrystallographychemistry.chemical_compoundPyridinelcsh:QD901-999lcsh:CrystallographyIUCrData
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Halogen Bonds in 2,5-Dihalopyridine-Copper(I) Halide Coordination Polymers

2019

Two series of 2,5-dihalopyridine-Cu(I)A (A = I, Br) complexes based on 2-X-5-iodopyridine and 2-X-5-bromopyridine (X = F, Cl, Br and I) are characterized by using single-crystal X-ray diffraction analysis to examine the nature of C2&minus

pyridinedihalopyridineSupramolecular chemistrychemistry.chemical_elementHalidekupari010402 general chemistry01 natural scienceslcsh:TechnologyArticlechemistry.chemical_compoundkemialliset sidoksetPyridineGeneral Materials Sciencelcsh:Microscopypolymeeritlcsh:QC120-168.85chemistry.chemical_classificationHalogen bondlcsh:QH201-278.5010405 organic chemistrylcsh:TPolymerkompleksiyhdisteetCopper3. Good health0104 chemical sciencesCrystallographyhalopyridineschemistrylcsh:TA1-2040copperHalogenFluorinehalogeenisidoksetlcsh:Descriptive and experimental mechanicshalogen bondlcsh:Electrical engineering. Electronics. Nuclear engineeringlcsh:Engineering (General). Civil engineering (General)lcsh:TK1-9971
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