Mesoscopic Elastic Distortions in GaAs Quantum Dot Heterostructures

Journal Article (2018)
Author(s)

Anastasios Pateras (University of Wisconsin-Madison)

Joonkyu Park (University of Wisconsin-Madison)

Youngjun Ahn (University of Wisconsin-Madison)

Jack A. Tilka (University of Wisconsin-Madison)

Martin V. Holt (Argonne National Laboratory)

Christian Reichl (ETH Zürich)

Werner Wegscheider (ETH Zürich)

Timothy A. Baart (Kavli institute of nanoscience Delft, TU Delft - QCD/Vandersypen Lab, TU Delft - QuTech Advanced Research Centre)

Juan Pablo Dehollain (Kavli institute of nanoscience Delft, TU Delft - QCD/Vandersypen Lab, TU Delft - QuTech Advanced Research Centre)

Uditendu Mukhopadhyay (Kavli institute of nanoscience Delft, TU Delft - QuTech Advanced Research Centre, TU Delft - QCD/Vandersypen Lab)

Lieven M.K. Vandersypen (TU Delft - Applied Sciences, TU Delft - QuTech Advanced Research Centre, TU Delft - QCD/Vandersypen Lab, Kavli institute of nanoscience Delft)

Paul G. Evans (University of Wisconsin-Madison)

Research Group
QCD/Vandersypen Lab
DOI related publication
https://doi.org/10.1021/acs.nanolett.7b04603 Final published version
More Info
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Publication Year
2018
Language
English
Research Group
QCD/Vandersypen Lab
Bibliographical Note
Green Open Access added to TU Delft Institutional Repository ‘You share, we take care!’ – Taverne project https://www.openaccess.nl/en/you-share-we-take-care Otherwise as indicated in the copyright section: the publisher is the copyright holder of this work and the author uses the Dutch legislation to make this work public.
Journal title
Nano Letters: a journal dedicated to nanoscience and nanotechnology
Issue number
5
Volume number
18
Pages (from-to)
2780-2786
Downloads counter
483
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Institutional Repository
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Abstract

Quantum devices formed in high-electron-mobility semiconductor heterostructures provide a route through which quantum mechanical effects can be exploited on length scales accessible to lithography and integrated electronics. The electrostatic definition of quantum dots in semiconductor heterostructure devices intrinsically involves the lithographic fabrication of intricate patterns of metallic electrodes. The formation of metal/semiconductor interfaces, growth processes associated with polycrystalline metallic layers, and differential thermal expansion produce elastic distortion in the active areas of quantum devices. Understanding and controlling these distortions present a significant challenge in quantum device development. We report synchrotron X-ray nanodiffraction measurements combined with dynamical X-ray diffraction modeling that reveal lattice tilts with a depth-averaged value up to 0.04° and strain on the order of 10-4 in the two-dimensional electron gas (2DEG) in a GaAs/AlGaAs heterostructure. Elastic distortions in GaAs/AlGaAs heterostructures modify the potential energy landscape in the 2DEG due to the generation of a deformation potential and an electric field through the piezoelectric effect. The stress induced by metal electrodes directly impacts the ability to control the positions of the potential minima where quantum dots form and the coupling between neighboring quantum dots.

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