
Andreas Wacker
Professor

Heat Driven Transport in Serial Double Quantum Dot Devices
Author
Summary, in English
Studies of thermally induced transport in nanostructures provide access to an exciting regime where fluctuations are relevant, enabling the investigation of fundamental thermodynamic concepts and the realization of thermal energy harvesters. We study a serial double quantum dot formed in an InAs/InP nanowire coupled to two electron reservoirs. By means of a specially designed local metallic joule-heater, the temperature of the phonon bath in the vicinity of the double quantum dot can be enhanced. This results in phonon-assisted transport, enabling the conversion of local heat into electrical power in a nanosized heat engine. Simultaneously, the electron temperatures of the reservoirs are affected, resulting in conventional thermoelectric transport. By detailed modeling and experimentally tuning the interdot coupling, we disentangle both effects. Furthermore, we show that phonon-assisted transport is sensitive to excited states. Our findings demonstrate the versatility of our design to study fluctuations and fundamental nanothermodynamics.
Department/s
- Solid State Physics
- NanoLund: Center for Nanoscience
- Mathematical Physics
Publishing year
2021
Language
English
Pages
988-994
Publication/Series
Nano Letters
Volume
21
Issue
2
Document type
Journal article
Publisher
The American Chemical Society (ACS)
Topic
- Condensed Matter Physics
Keywords
- nanowire
- phonon assisted transport
- quantum dot
- thermal energy harvesters
- thermoelectric effect
Status
Published
Project
- KAW Project: Nanothermodynamics for optoelectronic semiconductor devices
ISBN/ISSN/Other
- ISSN: 1530-6984