Modelling shallow confinement in tuneable quantum dots as a 1D cubic potential
POSTER
Abstract
By comparing our cubic model predictions with data counting single electron capture events in dynamically modulated quantum dot experiments we, indeed, confirm universality across multiple dot realizations and driving protocols. Moreover, we show theoretically that the correspondence between the cubic model and experiment should increase with increasing magnetic field. We illustrate this with a comparison to experimental data from precision current sources. Finally, using the cubic potential we develop a model for the temperature dependence of the electron escape rate which is verified by comparison to data from another field of nano-electronics - Josephson junctions.
* This research was funded by the Latvian Council of Science (grant no.lzp-2021/1-0232)
Publication: 1) arXiv preprint "Universal scaling of adiabatic tunneling out of a shallow confinement potential" on electron counting data from dynamically modulated quantum dots: https://doi.org/10.48550/arXiv.2301.11295 . This paper is planned to be submitted for publishing to Physical Review Letters.
2) An accompanying paper with the working title "Modelling shallow confinement in tuneable quantum dots" is planned to be submitted to Physical Review B. This paper is intended as a theory paper which explains the implications of the cubic potential for quantum dot experiments under the various settings mentioned in the abstract.
Presenters
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Austris Akmentins
University of Latvia
Authors
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Austris Akmentins
University of Latvia
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Vyacheslavs Kashcheyevs
University of Latvia
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Niels Ubbelohde
Physikalisch-Technische Bundesanstalt (PTB)