Temperature effects on edge-state properties in the integer quantum Hall regime
Abstract
The edge and bulk structure of Landau levels (LLs) in a wide channel at the quantum Hall regime is calculated for not-too-low temperatures, , where is the group velocity of the edge states and is the magnetic length. Edge-states correlations essentially modify the spatial behavior of the lowest spin-up LL, which is occupied, compared to the lowest spin-down LL, which is empty. The influence of many-body interactions on the spatially inhomogeneous spin-splitting between the two lowest LLs is studied within the generalized local density approximation. Temperature effects on the enhanced spin-splitting, the position of the Fermi level within the exchange enhanced gap and the renormalization of edge-states group velocity by edge states screening are considered. It is shown that the maximum activation energy in the bulk of the channel is determined by the gap between the Fermi level and the bottom of the spin-down LL, because the gap between the Fermi level and the spin-up LL is much larger. For the maximum value of , it is shown that the renormalized group velocity for and, in particular, the condition of not-too-low can be satisfied for K. In other words, the regime of not-too-low temperatures regime can be achieved even for rather low .
Cite
@article{arxiv.cond-mat/0110433,
title = {Temperature effects on edge-state properties in the integer quantum Hall regime},
author = {I. O. Baleva and Nelson Studart and O. G. Balev},
journal= {arXiv preprint arXiv:cond-mat/0110433},
year = {2009}
}
Comments
4 pages, 4 figures