Skip to main navigation Skip to search Skip to main content

Landau levels and spin splitting in the two-dimensional electron gas of a HgTe quantum well near the critical width for the topological phase transition

  • M. Pakmehr
  • , C. Bruene
  • , H. Buhmann
  • , L. W. Molenkamp
  • , A. V. Stier
  • , B. D. McCombe
  • SUNY Buffalo
  • University of Würzburg

Research output: Contribution to journalArticlepeer-review

12 Scopus citations

Abstract

We report a detailed low-temperature study of the two-dimensional (2D) electron gas in a 6.1-nm-wide HgTe quantum well with Hg0.3Cd0.7Te barriers by terahertz magnetophotoconductivity and magnetotransmission combined with magnetotransport measurements (Rxx and Rxy) in magnetic fields up to 10 T. This well width, close to that at the topological phase transition, corresponds to conventional band ordering, and we probe the "bulk" quasi-2D Landau-level (LL) spectrum of the conduction band at high energies (≈135-160meV) above the Dirac point. The calculated separations between adjacent LLs of the same spin based on published parameters for this structure are in fair agreement with the measured cyclotron resonance energies. However, the very large spin splittings observed (Espin>Ecyclotron) require a significantly larger g-parameter ge for electrons. Tilted field coincidence experiments are consistent with the large spin splitting showing coincidences at 3/2 and twice the cyclotron energy. This large value of ge also leads to interesting crossings of the calculated LLs, and we find direct evidence of these crossings in the Rxx measurements at lower electron densities (Fermi energies) produced by negative gate bias.

Original languageEnglish
Article number235414
JournalPhysical Review B - Condensed Matter and Materials Physics
Volume90
Issue number23
DOIs
StatePublished - Dec 5 2014

Fingerprint

Dive into the research topics of 'Landau levels and spin splitting in the two-dimensional electron gas of a HgTe quantum well near the critical width for the topological phase transition'. Together they form a unique fingerprint.

Cite this