Transient currents in a molecular photo-diode
arXiv:1209.0957 · doi:10.1016/j.chemphys.2012.08.017
Abstract
Light-induced charge transmission through a molecular junction (molecular diode) is studied in the framework of a HOMO-LUMO model and in using a kinetic description. Expressions are presented for the sequential (hopping) and direct (tunneling) transient current components together with kinetic equations governing the time-dependent populations of the neutral and charged molecular states which participate in the current formation. Resonant and off-resonant charge transmission processes are analyzed in detail. It is demonstrated that the transient currents are associated with a molecular charging process which is initiated by photo excitation of the molecule. If the coupling of the molecule to the electrodes is strongly asymmetric the transient currents can significantly exceed the steady state current.
17 pages, 12 figures, accepted for publication in Chemical Physics
References in corpus (11)
- Molecular Transport Junctions: Vibrational Effects
- Driven quantum transport on the nanoscale
- The influence of ultra-fast laser pulses on electron transfer in molecular wires studied by a non-Markovian density matrix approach
- Optical properties of current carrying molecular wires
- Vibrational effects in laser driven molecular wires
- Rectification of laser-induced electronic transport through molecules
- Theory of light-induced current in molecular-tunneling junctions excited with intense shaped pulses
- Robust ultrafast currents in molecular wires through Stark shifts
- Light-induced current in molecular junctions: Local field and non-Markov effects
- Laser-induced currents along molecular wire junctions
- Understanding the electroluminescence emitted by single molecules in scanning tunneling microscopy experiments