This paper examines the thermoelectric response of a dissipative quantum-dot heat engine based on the Anderson-Holstein model in two relevant operating limits, (i) when the dot phonon modes are out of equilibrium, and (ii) when the dot phonon modes are strongly coupled to a heat bath. In the first case, a detailed analysis of the physics related to the interplay between the quantum-dot level quantization, the on-site Coulomb interaction, and the electron-phonon coupling on the thermoelectric performance reveals that an n-type heat engine performs better than a p-type heat engine. In the second case, with the aid of the dot temperature estimated by incorporating a thermometer bath, it is shown that the dot temperature deviates from the bath ...
We focus on the theoretical approaches aimed to analyze thermoelectric properties at the nanoscale. ...
In the absence of phonon contribution, a weakly coupled single orbital noninteracting quantum dot th...
Electronic charge and heat flows can be separated in three-terminal conductors. Two terminals suppor...
We study the thermoelectric properties and heat-to-work conversion performance of an interacting, mu...
In the absence of phonon thermal conductivity, we theoretically investigate the output power of an i...
We study linear response and nonequilibrium steady-state thermoelectric transport through a single-l...
We analyze the power output of a quantum dot machine coupled to two electronic reservoirs via thermo...
Quantum dots (QDs) can serve as near perfect energy filters and are therefore of significant interes...
Abstract. We review recent theoretical work on thermoelectric energy harvesting in multi-terminal qu...
In this article we review aspects of charge and heat transport in interacting quantum dots and molec...
We review recent theoretical work on thermoelectric energy harvesting in multi-terminal quantum-dot ...
We employ the functional renormalization group to study the effects of phonon-assisted tunneling on ...
We numerically investigate the thermoelectric properties of a triangle quantum dot connected to meta...
We focus on the theoretical approaches aimed to analyze thermoelectric properties at the nanoscale. ...
In the absence of phonon contribution, a weakly coupled single orbital noninteracting quantum dot th...
Electronic charge and heat flows can be separated in three-terminal conductors. Two terminals suppor...
We study the thermoelectric properties and heat-to-work conversion performance of an interacting, mu...
In the absence of phonon thermal conductivity, we theoretically investigate the output power of an i...
We study linear response and nonequilibrium steady-state thermoelectric transport through a single-l...
We analyze the power output of a quantum dot machine coupled to two electronic reservoirs via thermo...
Quantum dots (QDs) can serve as near perfect energy filters and are therefore of significant interes...
Abstract. We review recent theoretical work on thermoelectric energy harvesting in multi-terminal qu...
In this article we review aspects of charge and heat transport in interacting quantum dots and molec...
We review recent theoretical work on thermoelectric energy harvesting in multi-terminal quantum-dot ...
We employ the functional renormalization group to study the effects of phonon-assisted tunneling on ...
We numerically investigate the thermoelectric properties of a triangle quantum dot connected to meta...
We focus on the theoretical approaches aimed to analyze thermoelectric properties at the nanoscale. ...
In the absence of phonon contribution, a weakly coupled single orbital noninteracting quantum dot th...
Electronic charge and heat flows can be separated in three-terminal conductors. Two terminals suppor...