We study the thermoelectric properties and heat-to-work conversion performance of an interacting, multilevel quantum dot (QD) weakly coupled to electronic reservoirs. We focus on the sequential tunneling regime. The dynamics of the charge in the QD is studied by means of master equations for the probabilities of occupation. From here we compute the charge and heat currents in the linear response regime. Assuming a generic multiterminal setup, and for low temperatures (quantum limit), we obtain analytical expressions for the transport coefficients which account for the interplay between interactions (charging energy) and level quantization. In the case of systems with two and three terminals we derive formulas for the power factor Q and the ...
We theoretically investigate the propagation of heat currents in a three-terminal quantum dot engine...
In the absence of phonon contribution, a weakly coupled single orbital noninteracting quantum dot th...
Thermoelectricity is the physical principle of converting heat energy directly into electrical energ...
We study the thermoelectric properties and heat-to-work conversion performance of an interacting, mu...
We study linear response and nonequilibrium steady-state thermoelectric transport through a single-l...
Quantum dots (QDs) can serve as near perfect energy filters and are therefore of significant interes...
In this thesis I study the thermoelectric properties of a multilevel interacting quantum dot weakly ...
This paper examines the thermoelectric response of a dissipative quantum-dot heat engine based on th...
We analyze the power output of a quantum dot machine coupled to two electronic reservoirs via thermo...
doi:10.1088/1367-2630/15/12/125001 Abstract. We analyze the noise properties of both electric charge...
We identify the operational conditions for maximum power of a nanothermoelectric engine consisting o...
In the absence of phonon thermal conductivity, we theoretically investigate the output power of an i...
We review recent theoretical work on thermoelectric energy harvesting in multi-terminal quantum-dot ...
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 theoretically investigate the propagation of heat currents in a three-terminal quantum dot engine...
In the absence of phonon contribution, a weakly coupled single orbital noninteracting quantum dot th...
Thermoelectricity is the physical principle of converting heat energy directly into electrical energ...
We study the thermoelectric properties and heat-to-work conversion performance of an interacting, mu...
We study linear response and nonequilibrium steady-state thermoelectric transport through a single-l...
Quantum dots (QDs) can serve as near perfect energy filters and are therefore of significant interes...
In this thesis I study the thermoelectric properties of a multilevel interacting quantum dot weakly ...
This paper examines the thermoelectric response of a dissipative quantum-dot heat engine based on th...
We analyze the power output of a quantum dot machine coupled to two electronic reservoirs via thermo...
doi:10.1088/1367-2630/15/12/125001 Abstract. We analyze the noise properties of both electric charge...
We identify the operational conditions for maximum power of a nanothermoelectric engine consisting o...
In the absence of phonon thermal conductivity, we theoretically investigate the output power of an i...
We review recent theoretical work on thermoelectric energy harvesting in multi-terminal quantum-dot ...
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 theoretically investigate the propagation of heat currents in a three-terminal quantum dot engine...
In the absence of phonon contribution, a weakly coupled single orbital noninteracting quantum dot th...
Thermoelectricity is the physical principle of converting heat energy directly into electrical energ...