English

Experimental verification of electrostatic boundary conditions in gate-patterned quantum devices

Applied Physics 2020-01-17 v1 Mesoscale and Nanoscale Physics

Abstract

In a model of a gate-patterned quantum device it is important to choose the correct electrostatic boundary conditions (BCs) in order to match experiment. In this study, we model gated-patterned devices in doped and undoped GaAs heterostructures for a variety of BCs. The best match is obtained for an unconstrained surface between the gates, with a dielectric region above it and a frozen layer of surface charge, together with a very deep back boundary. Experimentally, we find a 0.2V offset in pinch-off characteristics of one-dimensional channels in a doped heterostructure before and after etching off a ZnO overlayer, as predicted by the model. Also, we observe a clear quantised current driven by a surface acoustic wave through a lateral induced n-i-n junction in an undoped heterostructure. In the model, the ability to pump electrons in this type of device is highly sensitive to the back BC. Using the improved boundary conditions, it is straightforward to model quantum devices quite accurately using standard software.

Keywords

Cite

@article{arxiv.1806.09143,
  title  = {Experimental verification of electrostatic boundary conditions in gate-patterned quantum devices},
  author = {H. Hou and Y. Chung and G. Rughoobur and T. K. Hsiao and A. Nasir and A. J. Flewitt and J. P. Griffiths and I. Farrer and D. A. Ritchie and C. J. B. Ford},
  journal= {arXiv preprint arXiv:1806.09143},
  year   = {2020}
}

Comments

8 pages, 3 figures

R2 v1 2026-06-23T02:39:49.041Z