English

Stable quantum dots in an InSb two-dimensional electron gas

Mesoscale and Nanoscale Physics 2020-04-29 v1

Abstract

Indium antimonide (InSb) two-dimensional electron gases (2DEGs) have a unique combination of material properties: high electron mobility, strong spin-orbit interaction, large Land\'{e} g-factor, and small effective mass. This makes them an attractive platform to explore a variety of mesoscopic phenomena ranging from spintronics to topological superconductivity. However, there exist limited studies of quantum confined systems in these 2DEGs, often attributed to charge instabilities and gate drifts. We overcome this by removing the δ\delta-doping layer from the heterostructure, and induce carriers electrostatically. This allows us to perform the first detailed study of stable gate-defined quantum dots in InSb 2DEGs. We demonstrate two distinct strategies for carrier confinement and study the charge stability of the dots. The small effective mass results in a relatively large single particle spacing, allowing for the observation of an even-odd variation in the addition energy. By tracking the Coulomb oscillations in a parallel magnetic field we determine the ground state spin configuration and show that the large g-factor (\sim30) results in a singlet-triplet transition at magnetic fields as low as 0.3 T.

Keywords

Cite

@article{arxiv.1910.07309,
  title  = {Stable quantum dots in an InSb two-dimensional electron gas},
  author = {Ivan Kulesh and Chung Ting Ke and Candice Thomas and Saurabh Karwal and Christian M. Moehle and Sara Metti and Ray Kallaher and Geoffrey C. Gardner and Michael J. Manfra and Srijit Goswami},
  journal= {arXiv preprint arXiv:1910.07309},
  year   = {2020}
}

Comments

Includes supplementary information. Data files available at https://doi.org/10.4121/uuid:28a121af-1e08-429d-9d53-1cc53764e91e

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