The electric current induced heat generation in a strongly interacting quantum dot in the Coulomb blockade regime
arXiv:0905.4549 · doi:10.1103/PhysRevB.79.161309
Abstract
The heat generation by an electric current flowing through a quantum dot with the dot containing both electron-electron interaction and electron-phonon interaction, is studied. Using the non-equilibrium Keldysh Green's function method, the current-induced heat generation is obtained. We find that for a small phonon frequency, heat generation is proportional to the current. However, for a large phonon frequency, heat generation is in general qualitatively different from the current. It is non-monotonic with current and many unique and interesting behaviors emerge. The heat generation could be very large in the Coulomb blockade region, in which the current is very small due to the Coulomb blockade effect. On the other hand, in the resonant tunneling region, the heat generation is very small despite a large current, an ideal condition for device operation. In the curve of heat generation versus the bias, a negative differential of the heat generation is exhibited, although the current is always monotonously increasing with the bias voltage.
5 pages, 4 figures
References in corpus (7)
- Electrical generation and absorption of phonons in carbon nanotubes
- Electron Transport and Hot Phonons in Carbon Nanotubes
- Tunneling in suspended carbon nanotubes assisted by longitudinal phonons
- Heat conduction in molecular transport junctions
- Coupled electron and phonon transport in one-dimensional atomic junctions
- The transfer of energy between electrons and ions in solids
- Three-terminal scanning tunneling spectroscopy of suspended carbon nanotubes
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- Impact of electron-phonon coupling on electron transport through T-shaped arrangements of quantum dots in the Kondo regime