Dynamical simulations of charged soliton transport in conjugated polymers with the inclusion of electron-electron interactions
arXiv:0809.3211 · doi:10.1063/1.3046738
Abstract
We present numerical studies of the transport dynamics of a charged soliton in conjugated polymers under the influence of an external time-dependent electric field. All relevant electron-phonon and electron-electron interactions are nearly fully taken into account by simulating the monomer displacements with classical molecular dynamics (MD) and evolving the wavefunction for the electrons by virtue of the adaptive time-dependent density matrix renormalization group (TDDMRG) simultaneously and nonadiabatically. It is found that after a smooth turn-on of the external electric field the charged soliton is accelerated at first up to a stationary constant velocity as one entity consisting of both the charge and the lattice deformation. An ohmic region (6 mV/ 12 mV/) where the stationary velocity increases linearly with the electric field strength is observed. The relationship between electron-electron interactions and charged soliton transport is also investigated in detail. We find that the dependence of the stationary velocity of a charged soliton on the on-site Coulomb interactions and the nearest-neighbor interactions is due to the extent of delocalization of the charged soliton defect.
25 pages, 15 figures
References in corpus (6)
- Real time evolution using the density matrix renormalization group
- From density-matrix renormalization group to matrix product states
- Time-step targetting methods for real-time dynamics using DMRG
- Exploring local quantum many-body relaxation by atoms in optical superlattices
- Spin-charge separation in cold Fermi-gases: a real time analysis
- Spin-charge separation in two-component Bose-gases