| Literature DB >> 30935206 |
Domenic Prete1, Paolo Andrea Erdman1, Valeria Demontis1, Valentina Zannier1, Daniele Ercolani1, Lucia Sorba1, Fabio Beltram1, Francesco Rossella1, Fabio Taddei1, Stefano Roddaro1,2.
Abstract
We demonstrate high-temperature thermoelectric conversion in InAs/InP nanowire quantum dots by taking advantage of their strong electronic confinement. The electrical conductance G and the thermopower S are obtained from charge transport measurements and accurately reproduced with a theoretical model accounting for the multilevel structure of the quantum dot. Notably, our analysis does not rely on the estimate of cotunnelling contributions, since electronic thermal transport is dominated by multilevel heat transport. By taking into account two spin-degenerate energy levels we are able to evaluate the electronic thermal conductance K and investigate the evolution of the electronic figure of merit ZT as a function of the quantum dot configuration and demonstrate ZT ≈ 35 at 30 K, corresponding to an electronic efficiency at maximum power close to the Curzon-Ahlborn limit.Entities:
Keywords: Seebeck effect; Thermoelectric conversion; mesoscopic transport; nanowire; quantum dot
Year: 2019 PMID: 30935206 DOI: 10.1021/acs.nanolett.9b00276
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189