The effect of fluctuations - thermal and otherwise - on the temperature dependence of thermopower in aromatic chain single-molecule junctions
arXiv:1303.0488 · doi:10.1063/1.4795496
Abstract
We report a theoretical study of the thermopower of single-molecule junctions, with focus on phenyl-based molecular junctions. In contrast to prior studies, thermal fluctuations of the torsional angle between the phenyl rings and variations in the position of the molecular level alignment with respect to the electrode Fermi energy were both taken into account. Full thermopower histograms were obtained, and their dependence on the magnitude of the fluctuations was studied. We found that at large molecular orbital variations the thermopower becomes strongly dependent on the torsion angle and can even change sign. This results in a marked effect of fluctuations on the thermopower distribution, yielding an average thermopower at high temperatures that differs (smaller or larger) from the fluctuation-free value, depending on the strength of fluctuations. We therefore conclude that fluctuations should be taken into account both when extracting single-molecule parameters, such as the molecular level-Fermi level offset, and in predictions of the thermopower of molecular junctions.
Accepted for publication in J. Chem. Phys
References in corpus (9)
- Dependence of Single Molecule Junction Conductance on Molecular Conformation
- Simultaneous Determination of Conductance and Thermopower of Single Molecule Junctions
- Electron Transport Through Molecules: Self-consistent and Non-self-consistent Approaches
- Optimal thermoelectric figure of merit of a molecular junction
- Inelastic effects in molecular junction transport: Scattering and self-consistent calculations for the Seebeck coefficient
- Seebeck coefficient of thermoelectric moleculat junction: First-principles calculations
- Modeling elastic and photoassisted transport in organic molecular wires: length dependence and current-voltage characteristics
- Ab-initio study of the thermopower of biphenyl-based single-molecule junctions
- Image charge dynamics in time-dependent quantum transport