Publication | Open Access
A Model of Charge-Transfer Excitons: Diffusion, Spin Dynamics, and Magnetic Field Effects
24
Citations
35
References
2016
Year
Charge ExcitationsEngineeringMagnetic ResonanceExcitation Energy TransferSpintronic MaterialSpin DynamicCharge TransportMolecular DynamicsMagnetic FieldMagnetismQuantum MaterialsSpin DynamicsDisordered Molecular SemiconductorsCharge Carrier TransportBiophysicsPhysicsCharge-transfer ExcitonsQuantum ChemistryQuantum MagnetismSpintronicsNatural SciencesCondensed Matter PhysicsApplied PhysicsMicroscopic DynamicsMagnetic Field Effects
In this Letter, we explore how the microscopic dynamics of charge-transfer (CT) excitons are influenced by the presence of an external magnetic field in disordered molecular semiconductors. This influence is driven by the dynamic interplay between the spin and spatial degrees of freedom of the electron-hole pair. To account for this interplay, we have developed a numerical framework that combines a traditional model of quantum spin dynamics with a stochastic coarse-grained model of charge transport. This combination provides a general and efficient methodology for simulating the effects of magnetic field on CT state dynamics, therefore providing a basis for revealing the microscopic origin of experimentally observed magnetic field effects. We demonstrate that simulations carried out on our model are capable of reproducing experimental results as well as generating theoretical predictions related to the efficiency of organic electronic materials.
| Year | Citations | |
|---|---|---|
Page 1
Page 1