English

Extracting inter-dot tunnel couplings between few donor quantum dots in silicon

Mesoscale and Nanoscale Physics 2016-06-07 v2 Quantum Physics

Abstract

The long term scaling prospects for solid-state quantum computing architectures relies heavily on the ability to simply and reliably measure and control the coherent electron interaction strength, known as the tunnel coupling, tct_c. Here, we describe a method to extract the tct_c between two quantum dots (QDs) utilising their different tunnel rates to a reservoir. We demonstrate the technique on a few donor triple QD tunnel coupled to a nearby single-electron transistor (SET) in silicon. The device was patterned using scanning tunneling microscopy-hydrogen lithography allowing for a direct measurement of the tunnel coupling for a given inter-dot distance. We extract tc=5.5±1.8  GHz{t}_{{\rm{c}}}=5.5\pm 1.8\;{\rm{GHz}} and tc=2.2±1.3  GHz{t}_{{\rm{c}}}=2.2\pm 1.3\;{\rm{GHz}} between each of the nearest-neighbour QDs which are separated by 14.5 nm and 14.0 nm, respectively. The technique allows for an accurate measurement of tct_c for nanoscale devices even when it is smaller than the electron temperature and is an ideal characterisation tool for multi-dot systems with a charge sensor.

Keywords

Cite

@article{arxiv.1606.00851,
  title  = {Extracting inter-dot tunnel couplings between few donor quantum dots in silicon},
  author = {Samuel K. Gorman and Matthew A. Broome and Joris G. Keizer and Thomas F. Watson and Samuel J. Hile and William J. Baker and Michelle Y. Simmons},
  journal= {arXiv preprint arXiv:1606.00851},
  year   = {2016}
}

Comments

6 pages, 4 figures

R2 v1 2026-06-22T14:16:19.679Z