Quantitatively Accurate Calculations of Conductance and Thermopower of Molecular Junctions
arXiv:1305.3048 · doi:10.1002/pssb.201349217
Abstract
Thermopower measurements of molecular junctions have recently gained interest as a characterization technique that supplements the more traditional conductance measurements. Here we investigate the electronic conductance and thermopower of benzenediamine (BDA) and benzenedicarbonitrile (BDCN) connected to gold electrodes using first-principles calculations. We find excellent agreement with experiments for both molecules when exchange-correlation effects are described by the many-body GW approximation. In contrast, results from standard density functional theory (DFT) deviate from experiments by up to two orders of magnitude. The failure of DFT is particularly pronounced for the n-type BDCN junction due to the severe underestimation of the lowest unoccupied molecular orbital (LUMO). The quality of the DFT results can be improved by correcting the molecular energy levels for self-interaction errors and image charge effects. Finally, we show that the conductance and thermopower of the considered junctions are relatively insensitive to the metal-molecule bonding geometry. Our results demonstrate that electronic and thermoelectric properties of molecular junctions can be predicted from first-principles calculations when exchange-correlation effects are taken properly into account.
Submitted to special issue of pss (b)
References in corpus (14)
- Renormalization of Molecular Electronic Levels at Metal-Molecule Interfaces
- Single-Molecule Circuits with Well-Defined Molecular Conductance
- Molecular Transport Junctions: Vibrational Effects
- First-principles GW calculations for fullerenes, porphyrins, phtalocyanine, and other molecules of interest for organic photovoltaic applications
- Localized atomic basis set in the projector augmented wave method
- Magnetoresistance through a single molecule
- Giant thermopower and figure of merit in single-molecule devices
- Conserving GW scheme for nonequilibrium quantum transport in molecular contacts
- Optimal thermoelectric figure of merit of a molecular junction
- Giant Thermoelectric Effect from Transmission Supernodes
- Length-dependent conductance and thermopower in single-molecule junctions of dithiolated oligophenylene derivatives
- Quantum Interference and Decoherence in Single-Molecule Junctions: How Vibrations Induce Electrical Current
- Impact of Exchange-Correlation Effects on the IV Characteristics of a Molecular Junction
- Seebeck coefficient of thermoelectric moleculat junction: First-principles calculations
Cited by in corpus (4)
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