Valley polarization transition in a two-dimensional electron gas
arXiv:2110.09528 · doi:10.1103/PhysRevB.105.L241411
Abstract
We theoretically study transport signatures associated with a spontaneous 2-valley to 1-valley quantum phase transition in a two-dimensional electron gas (2DEG) tuned by decreasing the 2D carrier density, as claimed in a recent experiment [Phys. Rev. Lett. 127, 116601 (2021)]. The key issue we focus on is whether the experimentally measured 2D resistivity as a function of carrier density is consistent (or not) with an underlying spontaneous valley-polarization transition as assumed uncritically in the experimental report. Our theoretical analysis is particularly germane since the experiment does not directly measure the change in the Fermi surface resulting from the valley polarization transition, but infers such a transition indirectly through transport measurements. We validate the experimental claim, showing that indeed the observed sudden change in the 2D resistivity is quantitatively consistent with a sudden change in the valley polarization from 2 to 1 at the critical density.
6 pages, 3 figures
References in corpus (9)
- Phase Diagram of the Low-Density Two-Dimensional Homogeneous Electron Gas
- Density dependent spin susceptibility and effective mass in interacting quasi-two dimensional electron systems
- Mobility versus quality in 2D semiconductor structures
- Transport in two-dimensional modulation doped semiconductor structures
- Electronic transport in two dimensional Si:P -doped layers
- Bloch Ferromagnetism of Composite Fermions
- Density-dependent two-dimensional optimal mobility in ultra-high-quality semiconductor quantum wells
- Comment on "Effects of Thickness on the Spin Susceptibility of the Two Dimensional Electron Gas"
- Reentrant Bloch ferromagnetism