Search results for "Delocalized electron"

showing 8 items of 158 documents

Relation between resonance energy and substituent resonance effect inP-phenols

2005

Molecular geometries of phenol and its 17 p-substituted derivatives were optimized at the B3LYP/6–311 + G** level of theory. Three homodesmotic and three isodesmotic reaction schemes were used to estimate aromatic stabilization energies (ASE) and the substituent effect stabilization energy (SESE). Other descriptors of π-electron delocalization (HOMA and NICS, NICS(1) and NICS(1)zz) were also estimated. The SESE and ASE values correlated well with one another as well as with substituent constants. Much worse correlations with substituent constants were found for other aromaticity indices. The NICS(1)zz values are the most negative for unsubstituted phenol, indicating its highest aromaticity;…

chemistry.chemical_compoundDelocalized electronMolecular geometryChemistryComputational chemistryOrganic ChemistrySubstituentPhenolAromaticityPhenolsPhysical and Theoretical ChemistryResonance (chemistry)Resonance effectJournal of Physical Organic Chemistry
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Crystal structure of N′′-benzyl-N′′-[3-(benzyldimethylazaniumyl)propyl]-N,N,N′,N′-tetramethylguanidinium bis(tetraphenylborate)

2015

In the crystal structure of the title salt, C24H38N42+·2C24H20B−, the C—N bond lengths in the central CN3unit of the guanidinium ion are 1.3364 (13), 1.3407 (13) and 1.3539 (13) Å, indicating partial double-bond character. The central C atom is bonded to the three N atoms in a nearly ideal trigonal–planar geometry and the positive charge is delocalized in the CN3plane. The bonds between the N atoms and the terminal methyl groups of the guanidinium moiety and the four C—N bonds to the central N atom of the (benzyldimethylazaniumyl)propyl group have single-bond character. In the crystal, C—H...π interactions between the guanidinium H atoms and the phenyl C atoms of the tetraphenylborate ions …

crystal structureTetraphenylboratebiologyChemistryGeneral ChemistryCrystal structureCondensed Matter Physicsbiology.organism_classificationC—H⋯π inter­actionstetraphenylborateData ReportsIonCrystalBond lengthlcsh:ChemistryDelocalized electronCrystallographychemistry.chemical_compoundguanidinium saltC—H...π interactionslcsh:QD1-999tetra­phenyl­borateMoietyTetraGeneral Materials ScienceActa Crystallographica Section E: Crystallographic Communications
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Substituent effects in nitro derivatives of carbazoles investigated by comparison of low-temperature crystallographic studies with density functional…

2014

The crystal structure of 9H-carbazole, C12H9N, (I), has been redetermined at low temperature for use as a reference structure in a comparative study with the structures of 1-nitro-9H-carbazole, C12H8N2O2, (II), and 9-nitrocarbazole, C12H8N2O2, (III). The molecule of (I) has crystallographically imposed mirror symmetry (Z′ = 0.5). All three solid-state structures are slightly nonplanar, the dihedral angles between the planes of the arene and pyrrole rings ranging from 0.40 (7)° in (III) to 1.82 (18)° in (II). Nevertheless, a density functional theory (DFT) study predicts completely planar conformations for the isolated molecules. To estimate the influence of nitro-group substitution on aroma…

crystal structuremolecular electronicsSubstituentStackingElectronsbiological activityCrystal structureDihedral angleCrystallography X-RayDFT calculationsInorganic Chemistrychemistry.chemical_compoundDelocalized electronHOMA indexMaterials ChemistryPhysical and Theoretical ChemistryMolecular StructureHydrogen bondTemperatureHydrogen BondingAromaticityNitro CompoundsCondensed Matter PhysicsCrystallographycarbazoleselectron-withdrawing effectschemistryQuantum TheoryDensity functional theoryActa Crystallographica Section C-Structural Chemistry
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Substituent effects of nitro group in cyclic compounds

2020

AbstractNumerous studies on nitro group properties are associated with its high electron-withdrawing ability, by means of both resonance and inductive effect. The substituent effect of the nitro group may be well described using either traditional substituent constants or characteristics based on quantum chemistry, i.e., cSAR, SESE, and pEDA/sEDA models. Interestingly, the cSAR descriptor allows to describe the electron-attracting properties of the nitro group regardless of the position and the type of system. Analysis of classical and reverse substituent effects of the nitro group in various systems indicates strong pi-electron interactions with electron-donating substituents due to the re…

education.field_of_study010405 organic chemistryPopulationSubstituentMolecular modeling010402 general chemistryCondensed Matter PhysicsRing (chemistry)Resonance (chemistry)01 natural sciencesMedicinal chemistryQuantum chemistry0104 chemical sciencesNitro groupchemistry.chemical_compoundDelocalized electronCharge of the substituent active regionchemistrySigma and pi electron structureSubstituent effectsNitroSubstituent effect stabilization energyPhysical and Theoretical ChemistryeducationInductive effectStructural Chemistry
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Functional Extrapolations to Tame Unbound Anions in Density-Functional Theory Calculations

2019

Standard flavors of density-functional theory (DFT) calculations are known to fail in describing anions, due to large self-interaction errors. The problem may be circumvented using localized basis sets of reduced size, leaving no variational flexibility for the extra electron to delocalize. Alternatively, a recent approach exploiting DFT evaluations of total energies on electronic densities optimized at the Hartree-Fock (HF) level has been reported, showing that the self-interaction-free HF densities are able to lead to an improved description of the additional electron, returning affinities in close agreement with the experiments. Nonetheless, such an approach can fail when the HF densitie…

molecular-dynamicsforce-fieldExtrapolationFOS: Physical sciencesElectron01 natural sciencesForce field (chemistry)IonMolecular dynamicsDelocalized electronPhysics - Chemical Physics0103 physical sciences[CHIM]Chemical SciencesPhysical and Theoretical ChemistryapproximationComputingMilieux_MISCELLANEOUSChemical Physics (physics.chem-ph)PhysicsCondensed Matter - Materials Scienceelectron-affinitiesatoms010304 chemical physicsMaterials Science (cond-mat.mtrl-sci)energiesComputational Physics (physics.comp-ph)Computer Science ApplicationsComputational physics[CHIM.THEO]Chemical Sciences/Theoretical and/or physical chemistryEmbeddingDensity functional theoryPhysics - Computational PhysicsJournal of Chemical Theory and Computation
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Quantum Motion of Chemisorbed Hydrogen on Ni Surfaces

1983

Quantum mechanical energy levels and wave functions have been calculated for the motion of chemisorbed hydrogen atoms on Ni surfaces. The results show considerable quantum effects for the adatom in both the ground and the excited states. The description of the adparticles as being delocalized along the surface offers a novel interpretation of several phenomena, in particular the vibrational excitations. Peer reviewed

nickel surfacesMaterials scienceSolid-state physicsHydrogenwave functionsGeneral Physics and Astronomychemistry.chemical_element02 engineering and technology01 natural sciencesCondensed Matter::Materials ScienceDelocalized electron0103 physical sciencesPhysics::Atomic and Molecular Clustersenergy levels010306 general physicsWave functionQuantumMechanical energyPhysicshydrogen atoms021001 nanoscience & nanotechnologychemistryChemisorptionExcited stateAtomic physics0210 nano-technologyPhysical Review Letters
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4-Fluoro-N-methyl-N-nitroaniline

2016

Molecules of the title compound, C7H7FN2O2, are composed of a nitramine group which is twisted with the respect to the aromatic ring, with an N—N—C—C torsion angle of −117.38 (12)°. In the molecule, the N—N bond length [1.3510 (15) Å] indicates some double-bond character, while the angle between the aromatic ring and the nitramine group rules out further delocalization in the molecule. In the crystal, C—H...F hydrogen bonds connect the molecules intoC11(6) chains along theaaxis. C—H...O hydrogen bonds form, which featureR22(12) loops and further connect these chains.

nitraminescrystal structureinter­molecular bondsHydrogen bondStereochemistryintermolecular bondsGeneral MedicineCrystal structureDihedral angle010402 general chemistry010403 inorganic & nuclear chemistryRing (chemistry)01 natural sciences0104 chemical sciencesBond lengthchemistry.chemical_compoundCrystallographyDelocalized electronAnilinechemistrylcsh:QD901-999Nitrolcsh:CrystallographyIUCrData / International Union of Crystallography
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Synthesis of new hybrid 1,4-thiazinyl-1,2,3-dithiazolyl radicals via Smiles rearrangement

2017

The condensation reaction of 2-aminobenzenethiols and 3-aminopyrazinethiols with 2-amino-6-fluoro-N-methylpyridinium triflate afforded thioether derivatives that were found to undergo Smiles rearrangement and cyclocondensation with sulphur monochloride to yield new hybrid 1,4-thiazine-1,2,3-dithiazolylium cations. The synthesized cations were readily reduced to the corresponding stable neutral radicals with spin densities delocalized over both 1,4-thiazinyl and 1,2,3-dithiazolyl moieties. peerReviewed

synthesis010405 organic chemistryChemistryRadical12010402 general chemistryPhotochemistryCondensation reaction01 natural sciences0104 chemical sciencesInorganic Chemistrychemistry.chemical_compoundDelocalized electron14-thiazinyl-123-dithiazolyl radicalsThioether4-thiazinyl-1Smiles rearrangementYield (chemistry)Polymer chemistrysynteesiSmiles rearrangementTrifluoromethanesulfonateta1163-dithiazolyl radicalsDalton Transactions
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