Nagaoka spin-valley ordering in silicene quantum dots
arXiv:2012.12524 · doi:10.1103/PhysRevB.103.125306
Abstract
We study a cluster of quantum dots defined within silicene that host confined electron states with spin and valley degrees of freedom. Atomistic tight-binding and continuum Dirac approximation are applied for few-electron system in quest for spontaneous valley polarization driven by inter-dot tunneling and electron-electron interaction, i.e. a valley counterpart of itinerary Nagaoka ferromagnetic ordering recently identified in GaAs square cluster of quantum dots with three excess electrons [P. Dehollain, {\it et al.}, Nature {\bf 579}, 528 (2020)]. We find that for Hamiltonian without intrinsic-spin orbit coupling -- similar to the one of graphene with staggered potential -- the valley polarization in the ground-state can be observed in a range of inter-dot spacing provided that the spin of the system is frozen by external magnetic field. The inter-valley scattering effects are negligible for cluster geometry that supports the valley polarized ground-state. In presence of a strong intrinsic spin-orbit coupling that is characteristic to graphene no external magnetic field is necessary for observation of ground-state that is polarized in both spin and valley. The effective magnetic field due to the spin-orbit interaction produces a perfect anticorrelation of the spin and valley isospin components in the degenerate ground-state.
PRB, in press
References in corpus (14)
- The electronic properties of graphene
- Chiral tunneling and the Klein paradox in graphene
- Biased bilayer graphene: semiconductor with a gap tunable by electric field effect
- Valley filter and valley valve in graphene
- Valley-Polarized Metals and Quantum Anomalous Hall Effect in Silicene
- Coupling of Spin and Orbital Motion of Electrons in Carbon Nanotubes
- Symmetry Classes in Graphene Quantum Dots: Universal Spectral Statistics, Weak Localization, and Conductance Fluctuations
- Analytic Model for the Energy Spectrum of a Graphene Quantum Dot in a Perpendicular Magnetic Field
- Valley-spin blockade and spin resonance in carbon nanotubes
- Three-dimensional mesh calculations for covariant density functional theory
- The spectrum of interacting metallic carbon nanotubes: Exchange effects and universality
- The low energy spectrum of finite size metallic SWNTs
- Nanoscale ferromagnetism in non-magnetic doped semiconductors
- Wigner localization in a graphene quantum dot with a mass gap