Search results for "molecular electronic"

showing 10 items of 126 documents

Infrared study of the MoO3 doping efficiency in 4,4′-bis(N-carbazolyl)-1,1′-biphenyl (CBP)

2013

AbstractElectrochemical doping produces clear changes in the vibrational spectra of organic semiconductors as we show here for the system molybdenum oxide (MoO3) doped into the charge transport material 4,4′-bis(N-carbazolyl)-1,1′-biphenyl (CBP). Based on density-functional theory (DFT) calculations of vibrational spectra, the new spectral features can be attributed to the CBP cation that forms as a result of electron transfer from CBP to MoO3. The intensity of the new vibrational lines is a direct measure for the probability of charge transfer. MoO3 agglomerating within the CBP matrix limits the active interface area between the two species. The appearance of a broad electronic transition …

Charge dissociationChemistry(all)Electrochemical dopingInfraredChemistryAgglomerationDopingAnalytical chemistryInfrared spectroscopyDoping efficiencyGeneral ChemistryElectronic structureCondensed Matter PhysicsMolecular electronic transitionElectronic Optical and Magnetic MaterialsBiomaterialsOrganic semiconductorElectron transferCharge transferMaterials ChemistryElectrical and Electronic EngineeringInfrared spectroscopyExcitationOrganic Electronics
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A mutliconfigurational study of low-lying electronic states of KO

1992

Abstract Potential energy curves and spectroscopic parameters of several electronic states of the KO molecule have been calculated using multi-configurational methods. The KO B 2Π state, first time theoretically described, presents a strong avoided crossing with the A 2Π state, and allows for the explanation of the observed fluorescence of the KO molecule. Eleven electronic states have been studied at all the internuclear distances. Effects of complete active space and basis set selections on the results are also analyzed.

ChemistryComputational chemistryAvoided crossingGeneral Physics and AstronomyComplete active spacePhysical and Theoretical ChemistryConfiguration interactionAtomic physicsPotential energyDiatomic moleculeBasis setMolecular electronic transitionDoublet stateChemical Physics
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Theoretical Study on the Structures and Electronic Spectra of TCNE2−

2006

Investigations into the charge-separated states and electron-transfer transitions in tetracyanoethylene (TCNE) compiles have recently generated much interest. In this work we present theoretical calculations showing that the most stable structure of the dianion TCNE 2- has D 2d symmetry in vacuum as well as in the solvents dichloromethane and cicetonitrile. By means of the coupled cluster linear response, we compute the vertical electronic spectrum in both the gas phase and solution. The theoreitcal results, are compared to the experimental data and good agreement is achieved.

ChemistryElectronic structureTetracyanoethyleneMolecular physicsAtomic and Molecular Physics and OpticsMolecular electronic transitionSpectral lineSymmetry (physics)chemistry.chemical_compoundCoupled clusterComputational chemistryAb initio quantum chemistry methodsPhysical and Theoretical ChemistrySolvent effectsChemPhysChem
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Donor-acceptor substituted polyenes : orientation in mono- and multilayers

1992

Large molecules containing different chemical units whose interactions within the molecule result in new macroscopically observable effects, have become increasingly important.The organization of molecules of this type in ordered structures leads to functional molecular materials.Their use in molecular electronics requires that the units exhibit specific electronic properties. Recently, we reported on the intramolecular energy transfer through terminally substituted conjugated polyenes. An intramolecular electron transfer within donor-acceptor substituted polyenes can be achieved by introducing suitable terminal groups.

ChemistryPolyene SubstitutionsreaktionMechanical EngineeringMolecular electronicsNonlinear opticsConjugated systemPolyene540Orientation (vector space)Electron transferchemistry.chemical_compoundCrystallographyMechanics of MaterialsComputational chemistryIntramolecular forceMoleculeGeneral Materials Science
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Vibrational analysis of the electronic spectrum of ethylene based onab initio SCF-CI calculations

1972

Ab initio calculations for CH2 twisting and CC stretching vibrational wavefunctions and energy levels are reported for various electronic states of ethylene C2H4. Electronic transition moments between these states are also obtained to allow a calculation of the oscillator strengths for vibrational transitions involved in various electronic band systems; from this study it is concluded that thevertical electronic energy differenceΔE e may differ significantly from the energy of the absorption maximumΔE max with which it is often equated. In particular it is found in the case of theπ→π * singlet-singlet excitation of ethylene that theΔE e value overestimates the most probable vibrational tran…

ChemistryTransition dipole momentAb initioMolecular electronic transitionsymbols.namesakeAb initio quantum chemistry methodsRydberg formulasymbolsChiropracticsPhysics::Chemical PhysicsPhysical and Theoretical ChemistryAtomic physicsAbsorption (electromagnetic radiation)Wave functionExcitationTheoretica Chimica Acta
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Quantum chemical simulation of excited states of chlorophylls, bacteriochlorophylls and their complexes

2006

The present review describes the use of quantum chemical methods in estimation of structures and electronic transition energies of photosynthetic pigments in vacuum, in solution and imbedded in proteins. Monomeric Mg-porphyrins, chlorophylls and bacteriochlorophylls and their solvent 1:1 and 1:2 complexes were studied. Calculations were performed for Mg-porphyrin, Mg-chlorin, Mg-bacteriochlorin, mesochlorophyll a, chlorophylls a, b, c(1), c(2), c(3), d and bacteriochlorophylls a, b, c, d, e, f, g, h, plus several homologues. Geometries were optimised with PM3, PM3/CISD, PM5, ab initio HF (6-31G*/6-311G**) and density functional B3LYP (6-31G*/6-311G**) methods. Spectroscopic transition energ…

ChlorophyllModels MolecularMolecular ConformationAb initioGeneral Physics and AstronomyElectronic structureCrystallography X-RayMolecular electronic transitionLight-harvesting complexchemistry.chemical_compoundAb initio quantum chemistry methodsComputational chemistryComputer SimulationZINDOPhysical and Theoretical ChemistryBacteriochlorophyllsbiologyChemistryChloroflexus aurantiacusProteinsbiology.organism_classificationEnergy TransferModels ChemicalQuantum TheoryPhysical chemistryBacteriochlorophyllPhys. Chem. Chem. Phys.
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Ultrafast dynamics of halogens in rare gas solids

2007

We perform time resolved pump-probe spectroscopy on small halogen molecules ClF, Cl2, Br2, and I2 embedded in rare gas solids (RGS). We find that dissociation, angular depolarization, and the decoherence of the molecule is strongly influenced by the cage structure. The well ordered crystalline environment facilitates the modelling of the experimental angular distribution of the molecular axis after the collision with the rare gas cage. The observation of many subsequent vibrational wave packet oscillations allows the construction of anharmonic potentials and indicate a long vibrational coherence time. We control the vibrational wave packet revivals, thereby gaining information about the vib…

Coherence timeQuantum decoherenceChemistryPhononWave packetAnalytical chemistryGeneral Physics and AstronomyMolecular electronicsMolecular electronic transitionExcited statePhysics::Atomic and Molecular ClustersPhysical and Theoretical ChemistryAtomic physicsCoherence (physics)Phys. Chem. Chem. Phys.
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Disorder and dephasing effects on electron transport through conjugated molecular wires in molecular junctions

2012

Understanding electron transport processes in molecular wires connected between contacts is a central focus in the field of molecular electronics. Especially, the dephasing effect causing tunneling-to-hopping transition has great importance from both applicational and fundamental points of view. We analyzed coherent and incoherent electron transmission through conjugated molecular wires by means of density-functional tight-binding theory within the D'Amato-Pastawski model. Our approach can study explicitly the structure/transport relationship in molecular junctions in a dephasing environmental condition using only single dephasing parameter. We investigated the length dependence and the inf…

Condensed Matter - Materials ScienceMaterials scienceCondensed Matter - Mesoscale and Nanoscale Physicsta114Field (physics)Condensed matter physicsDephasingMaterials Science (cond-mat.mtrl-sci)FOS: Physical sciencesThermal fluctuationsConductanceMolecular electronicsdephasingConjugated systemCondensed Matter PhysicsCondensed Matter::Mesoscopic Systems and Quantum Hall EffectElectron transport chainElectronic Optical and Magnetic MaterialsMolecular wireelectronic transportMesoscale and Nanoscale Physics (cond-mat.mes-hall)grafeeni
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Nanoparticles at fluid interfaces.

2017

Nanoparticles at fluid interfaces are becoming a central topic in colloid science studies. Unlike in the case of colloids in suspensions, the description of the forces determining the physical behavior of colloids at interfaces still represents an outstanding problem in the modern theory of colloidal interactions. These forces regulate the formation of complex two-dimensional structures, which can be exploited in a number of applications of technological interest; optical devices, catalysis, molecular electronics or emulsions stabilization. From a fundamental viewpoint and typical for colloidal systems, nanoparticles and microparticles at interfaces are ideal experimental and theoretical mo…

Condensed matter physicsChemistryNanoparticleMolecular electronicsThermal fluctuationsCondensed Matter PhysicsCondensed Matter::Soft Condensed Mattersymbols.namesakeChemical physicsPhase (matter)symbolsMagnetic nanoparticlesDLVO theoryParticleGeneral Materials Sciencevan der Waals forceJournal of physics. Condensed matter : an Institute of Physics journal
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Spin-orbit coupling constants from coupled-cluster response theory

2000

A scheme for the calculation of spin-orbit coupling constants using coupled-cluster (CC) electronic structure methods is described based on response-theory expressions for transition properties. An implementation is reported for singlet–triplet transitions within the coupled-cluster singles and doubles (CCSD) approximation. An atomic mean-field representation of the spin-orbit interaction is used to simplify the calculation of spin-orbit coupling constants. Sample calculations are presented for spin-orbit couplings for the 11Σ+→13Π transitions for BH and AlH and for the 11A′→13A″ and the 13A″→11A″ transitions for the silylenes HSiX, X=F, Cl, Br, and are compared to results obtained from ful…

Coupling constantCoupled clusterComputational chemistryChemistryOperator (physics)General Physics and AstronomyElectronic structureSpin–orbit interactionPhysical and Theoretical ChemistryAtomic physicsRepresentation (mathematics)Full configuration interactionMolecular electronic transitionPhysical Chemistry Chemical Physics
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