English

Collapse of Spin-Splitting in the Quantum Hall Effect

Condensed Matter 2009-10-28 v1

Abstract

It is known experimentally that at not very large filling factors ν\nu the quantum Hall conductivity peaks corresponding to the same Landau level number NN and two different spin orientations are well separated. These peaks occur at half-integer filling factors ν=2N+1/2\nu = 2 N + 1/2 and ν=2N+3/2\nu = 2 N + 3/2 so that the distance between them δν\delta\nu is unity. As ν\nu increases δν\delta\nu shrinks. Near certain N=NcN = N_c two peaks abruptly merge into a single peak at ν=2N+1\nu = 2N + 1. We argue that this collapse of the spin-splitting at low magnetic fields is attributed to the disorder-induced destruction of the exchange enhancement of the electron gg-factor. We use the mean-field approach to show that in the limit of zero Zeeman energy δν\delta\nu experiences a second-order phase transition as a function of the magnetic field. We give explicit expressions for NcN_c in terms of a sample's parameters. For example, we predict that for high-mobility heterostructures Nc=0.9dn5/6ni1/3,N_c = 0.9 d n^{5/6} n_i^{-1/3}, where dd is the spacer width, nn is the density of the two-dimensional electron gas, and nin_i is the two-dimensional density of randomly situated remote donors.

Keywords

Cite

@article{arxiv.cond-mat/9506084,
  title  = {Collapse of Spin-Splitting in the Quantum Hall Effect},
  author = {M. M. Fogler and B. I. Shklovskii},
  journal= {arXiv preprint arXiv:cond-mat/9506084},
  year   = {2009}
}

Comments

14 pages, compressed Postscript file

R2 v1 2026-07-22T11:50:01.516Z