Exact-exchange spin-density functional theory of Wigner localization and phase transitions in quantum rings

J Phys Condens Matter. 2011 Aug 24;23(33):335601. doi: 10.1088/0953-8984/23/33/335601. Epub 2011 Aug 3.

Abstract

We apply exact-exchange spin-density functional theory in the Krieger-Li-Iafrate approximation to interacting electrons in quantum rings of different widths. The rings are threaded by a magnetic flux that induces a persistent current. A weak space and spin symmetry breaking potential is introduced to allow for localized solutions. As the electron-electron interaction strength described by the dimensionless parameter r(S) is increased, we observe-at a fixed spin magnetic moment-the subsequent transition of both spin sub-systems from the Fermi liquid to the Wigner crystal state. A dramatic signature of Wigner crystallization is that the persistent current drops sharply with increasing r(S). We observe simultaneously the emergence of pronounced oscillations in the spin-resolved densities and in the electron localization functions indicating a spatial electron localization showing ferrimagnetic order after both spin sub-systems have undergone the Wigner crystallization. The critical r(S)(c) at the transition point is substantially smaller than in a fully spin-polarized system and decreases further with decreasing ring width. Relaxing the constraint of a fixed spin magnetic moment, we find that on increasing r(S) the stable phase changes from an unpolarized Fermi liquid to an antiferromagnetic Wigner crystal and finally to a fully polarized Fermi liquid.

MeSH terms

  • Electrons*
  • Magnetics
  • Models, Theoretical
  • Phase Transition
  • Quantum Theory*
  • Solutions
  • Spin Labels*
  • Temperature

Substances

  • Solutions
  • Spin Labels