English

Chiral spin currents and spectroscopically accessible single merons in quantum dots

Mesoscale and Nanoscale Physics 2011-08-08 v2 Strongly Correlated Electrons Computational Physics

Abstract

We provide unambiguous theoretical evidence for the formation of correlation-induced isolated merons in rotationally-symmetric quantum dots. Our calculations rely on neither the lowest-Landau-level approximation, nor on the maximum-density-droplet approximation, nor on the existence of a spin-polarized state. For experimentally accessible system parameters, unbound merons condense in the ground state at magnetic fields as low as B=0.2B^* = 0.2 T and for as few as N = 3 confined fermions. The four-fold degenerate ground-state at BB^* corresponds to four orthogonal merons QC\ket{QC} characterized by their topological chirality CC and charge QQ. This degeneracy is lifted by the Rashba and Dresselhaus spin-orbit interaction, which we include perturbatively, yielding spectroscopic accessibility to individual merons. We further derive a closed-form expression for the topological chirality in the form of a chiral spin current and use it to both characterize our states and predict the existence of other topological textures in other regions of phase space, for example, at N=5. Finally, we compare the spin textures of our numerically exact meron states to ansatz wave-functions of merons in quantum Hall droplets and find that the ansatz qualitatively describes the meron states.

Cite

@article{arxiv.1106.0450,
  title  = {Chiral spin currents and spectroscopically accessible single merons in quantum dots},
  author = {Catherine J. Stevenson and Jordan Kyriakidis},
  journal= {arXiv preprint arXiv:1106.0450},
  year   = {2011}
}

Comments

4 pages, 5 figures; minor title change, typos fixed

R2 v1 2026-06-21T18:16:47.206Z