Impact of Fano and Breit-Wigner resonances in the thermoelectric properties of nanoscale junctions
arXiv:1307.2837 · doi:10.1103/PhysRevB.88.235417
Abstract
We show that the thermoelectric properties of nanoscale junctions featuring states near the Fermi level strongly depend on the type of resonance generated by such states, which can be either Fano or Breit-Wigner-like. We give general expressions for the thermoelectric coefficients generated by the two types of resonances and calculate the thermoelectric properties of these systems, which encompass most nanoelectronics junctions. We include simulations of real junctions where metalloporphyrin molecules bridge gold electrodes and prove that for some metallic elements the thermoelectric properties show a large variability. We find that the thermopower and figure of merit are largely enhanced when the resonance gets close to the Fermi level and reach values much higher than typical values found in other nanoscale junctions. The specific value and temperature dependence are determined by a series of factors such as the strength of the coupling between the state and other molecular states, the symmetry of the state, the strength of the coupling between the molecule and the leads and the spin filtering behavior of the junction.
9 pages, 11 figures
References in corpus (10)
- Giant thermopower and figure of merit in single-molecule devices
- Simultaneous Determination of Conductance and Thermopower of Single Molecule Junctions
- Optimal thermoelectric figure of merit of a molecular junction
- Electron- and phonon transport in silicon nanowires: an atomistic approach to thermoelectric properties
- Powerful and efficient energy harvester with resonant-tunneling quantum dots
- Length-dependent conductance and thermopower in single-molecule junctions of dithiolated oligophenylene derivatives
- Non-trivial length dependence of the conductance and negative differential resistance in atomic molecular wires
- Ab-initio study of the thermopower of biphenyl-based single-molecule junctions
- Universality in the transport response of molecular wires physisorbed onto graphene electrodes
- Symmetry-induced interference effects in metalloporphyrin wires
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- Thermoelectric response enhanced by surface/edge states in physical nanogaps
- Impact of electron-electron interactions on the thermoelectric efficiency of graphene quantum point contacts
- Enhancement of the thermoelectric properties in bilayer graphene structures induced by Fano resonances