Phys. Rev. B 76, 245310 (2007) [12 pages]Three-electron anisotropic quantum dots in variable magnetic fields: Exact results for excitation spectra, spin structures, and entanglementSee Also: Erratum Received 19 June 2007; revised 8 October 2007; published 11 December 2007 Exact-diagonalization calculations for N=3 electrons in anisotropic quantum dots, covering a broad range of confinement anisotropies and strength of interelectron repulsion, are presented for zero and low magnetic fields. The excitation spectra are analyzed as a function of the strength of the magnetic field and for increasing quantum-dot anisotropy. Analysis of the intrinsic structure of the many-body wave functions through spin-resolved two-point correlations reveals that electrons tend to localize forming Wigner molecules. For certain ranges of dot parameters (mainly at strong anisotropy), the Wigner molecules acquire a linear geometry, and the associated wave functions with a spin projection Sz=1∕2 are similar to the representative class of strongly entangled states referred to as the W states. For other ranges of parameters (mainly at intermediate anisotropy), the Wigner molecules exhibit a more complex structure consisting of two mirror isosceles triangles. This latter structure can be viewed as an embryonic unit of a zigzag Wigner crystal in quantum wires. The degree of entanglement in three-electron quantum dots can be quantified through the use of the von Neumann entropy. © 2007 The American Physical Society URL:
http://link.aps.org/doi/10.1103/PhysRevB.76.245310
DOI:
10.1103/PhysRevB.76.245310
PACS:
73.21.La, 31.25.−v, 03.67.Mn, 03.65.Ud
See AlsoErratum: Yuesong Li, Constantine Yannouleas, and Uzi Landman, Erratum: Three-electron anisotropic quantum dots in variable magnetic fields: Exact results for excitation spectra, spin structures, and entanglement [Phys. Rev. B 76, 245310 (2007)], Phys. Rev. B 81, 049902 (2010). |
