English

Field effect two-dimensional electron gases in modulation-doped InSb surface quantum wells

Mesoscale and Nanoscale Physics 2023-01-10 v2

Abstract

We report on transport characteristics of field effect two-dimensional electron gases (2DEG) in surface indium antimonide quantum wells. The topmost 5 nm of the 30 nm wide quantum well is doped and shown to promote the formation of reliable, low resistance Ohmic contacts to surface InSb 2DEGs. High quality single-subband magnetotransport with clear quantized integer quantum Hall plateaus are observed to filling factor ν=1\nu=1 in magnetic fields of up to B=18B=18 T. We show that the electron density is gate-tunable, reproducible, and stable from pinch-off to 4×1011\times 10^{11} cm2^{-2}, and peak mobilities exceed 24,000 cm2^2/Vs. Large Rashba spin-orbit coefficients up to 110 meV\cdot\r{A} are obtained through weak anti-localization measurements. An effective mass of 0.019mem_e is determined from temperature-dependent magnetoresistance measurements, and a g-factor of 41 at a density of 3.6×1011\times 10^{11} cm2^{-2} is obtained from coincidence measurements in tilted magnetic fields. By comparing two heterostructures with and without a delta-doped layer beneath the quantum well, we find that the carrier density is stable with time when doping in the ternary Al0.1_{0.1}In0.9_{0.9}Sb barrier is not present. Finally, the effect of modulation doping on structural asymmetry between the two heterostructures is characterized.

Keywords

Cite

@article{arxiv.2209.08193,
  title  = {Field effect two-dimensional electron gases in modulation-doped InSb surface quantum wells},
  author = {E. Annelise Bergeron and F. Sfigakis and Y. Shi and George Nichols and P. C. Klipstein and A. Elbaroudy and Sean M. Walker and Z. R. Wasilewski and J. Baugh},
  journal= {arXiv preprint arXiv:2209.08193},
  year   = {2023}
}

Comments

Main text 7 pages 4 figures; Supplemental 17 pages 7 figures; added bandstructure simulations and MBE growth details, otherwise minor modifications to previous version

R2 v1 2026-06-28T01:29:01.904Z