English

Effective g factor of low-density two-dimensional holes in a Ge quantum well

Mesoscale and Nanoscale Physics 2017-09-15 v1

Abstract

We report measurements of the effective gg factor of low-density two-dimensional holes in a Ge quantum well. Using the temperature dependence of the Shubnikov-de Haas oscillations, we extract the effective gg factor in a magnetic field perpendicular to the sample surface. Very large values of the effective gg factor, ranging from 13\sim13 to 28\sim28, are observed in the density range of 1.4×10101.4\times10^{10} cm2^{-2} to 1.4×10111.4\times10^{11} cm2^{-2}. When the magnetic field is oriented parallel to the sample surface, the effective gg factor is obtained from a protrusion in the magneto-resistance data that signifies full spin polarization. In the latter orientation, a small effective gg factor, 1.31.4\sim1.3-1.4, is measured in the density range of 1.5×10101.5\times10^{10} cm2^{-2} to 2×10102\times10^{10} cm2^{-2}. This very strong anisotropy is consistent with theoretical predictions and previous measurements in other 2D hole systems, such as InGaAs and GaSb.

Keywords

Cite

@article{arxiv.1709.04532,
  title  = {Effective g factor of low-density two-dimensional holes in a Ge quantum well},
  author = {T. M. Lu and C. T. Harris and S. -H. Huang and Y. Chuang and J. -Y. Li and C. W. Liu},
  journal= {arXiv preprint arXiv:1709.04532},
  year   = {2017}
}