Electron tunneling between two electrodes mediated by a molecular wire containing a redox center
arXiv:0912.1165 · doi:10.1016/j.chemphys.2010.01.009
Abstract
We derive an explicit expression for the quantum conductivity of a molecular wire containing a redox center, which is embedded in an electrochemical environment. The redox center interacts with the solvent, and the average over the solvent configurations is performed numerically. Explicit calculations have been performed for a chain of three atoms. When the redox center interacts strongly with neighboring electronic levels, the current-potential curves show interesting features like rectification, current plateaus and negative differential resistance. Electronic spectroscopy of intermediate states can be performed at constant small bias by varying the electrochemical potential of the wire.
References in corpus (8)
- Thermal conductance through molecular wires
- Tunneling broadening of vibrational sidebands in molecular transistors
- Theory of Current and Shot Noise Spectroscopy in Single-Molecular Quantum Dots with Phonon Mode
- Current Noise in ac-Driven Nanoscale Conductors
- Non-equilibrium Green's function formalism and the problem of bound states
- Current hysteresis and memory effect in a molecular quantum dot with strong electron-vibron interaction
- Shot noise control in ac-driven nanoscale conductors
- Non-linear response of molecular junctions: The polaron model revisited