English

Transference of Fermi Contour Anisotropy to Composite Fermions

Mesoscale and Nanoscale Physics 2017-07-12 v2

Abstract

There has been a surge of recent interest in the role of anisotropy in interaction-induced phenomena in two-dimensional (2D) charged carrier systems. A fundamental question is how an anisotropy in the energy-band structure of the carriers at zero magnetic field affects the properties of the interacting particles at high fields, in particular of the composite fermions (CFs) and the fractional quantum Hall states (FQHSs). We demonstrate here tunable anisotropy for holes and hole-flux CFs confined to GaAs quantum wells, via applying \textit{in situ} in-plane strain and measuring their Fermi wavevector anisotropy through commensurability oscillations. For strains on the order of 10410^{-4} we observe significant deformations of the shapes of the Fermi contours for both holes and CFs. The measured Fermi contour anisotropy for CFs at high magnetic field (αCF\alpha_\mathrm{CF}) is less than the anisotropy of their low-field hole (fermion) counterparts (αF\alpha_\mathrm{F}), and closely follows the relation: αCF=αF\alpha_\mathrm{CF} = \sqrt{\alpha_\mathrm{F}}. The energy gap measured for the ν=2/3\nu = 2/3 FQHS, on the other hand, is nearly unaffected by the Fermi contour anisotropy up to αF3.3\alpha_\mathrm{F} \sim 3.3, the highest anisotropy achieved in our experiments.

Keywords

Cite

@article{arxiv.1701.06684,
  title  = {Transference of Fermi Contour Anisotropy to Composite Fermions},
  author = {Insun Jo and K. A. Villegas Rosales and M. A. Mueed and L. N. Pfeiffer and K. W. West and K. W. Baldwin and R. Winkler and Medini Padmanabhan and M. Shayegan},
  journal= {arXiv preprint arXiv:1701.06684},
  year   = {2017}
}

Comments

6 pages, 5 figures