The Journal of Chemical Physics · 2013 · 127 citations · 33 references
EngineeringOrganic ElectronicsFirst Principle CalculationsOrganic ChemistryComputational ChemistryChemistryCharge TransportMolecular DynamicsBoropheneSemiconductorsElectronic DevicesBand MobilitiesCharge Carrier TransportMaterials ScienceOrganic SemiconductorPhysical ChemistryQuantum ChemistryOrganic Charge-transfer CompoundElectronic MaterialsNatural SciencesApplied PhysicsCondensed Matter PhysicsRelaxation TimesMolecule-based MaterialBand Conductivity
Hopping and band mobilities of holes in organic semiconductors at room temperature were estimated from first principle calculations. Relaxation times of charge carriers were evaluated using the acoustic deformation potential model. It is found that van der Waals interactions play an important role in determining accurate relaxation times. The hopping mobilities of pentacene, rubrene, and 2,7-dioctyl[1]benzothieno[3,2-b][1]benzothiophene (C8-BTBT) in bulk single crystalline structures were found to be smaller than 4 cm(2)∕Vs, whereas the band mobilities were estimated between 36 and 58 cm(2)∕Vs, which are close to the maximum reported experimental values. This strongly suggests that band conductivity is dominant in these materials even at room temperature.
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Van der Waals Density Functional for General Geometries
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