Effective low-energy Hamiltonians for interacting nanostructures
arXiv:1002.2513 · doi:10.1103/PhysRevB.82.155430
Abstract
We present a functional renormalization group (fRG) treatment of trigonal graphene nanodiscs and composites thereof, modeled by finite-size Hubbard-like Hamiltonians with honeycomb lattice structure. At half filling, the noninteracting spectrum of these structures contains a certain number of half-filled states at the Fermi level. For the case of trigonal nanodiscs, including interactions between these degenerate states was argued to lead to a large ground state spin with potential spintronics applications. Here we perform a systematic fRG flow where the excited single-particle states are integrated out with a decreasing energy cutoff, yielding a renormalized low-energy Hamiltonian for the zero-energy states that includes effects of the excited levels. The numerical implementation corroborates the results obtained with a simpler Hartree-Fock treatment of the interaction effects within the zero-energy states only. In particular, for trigonal nanodiscs the degeneracy of the one-particle-states with zero-energy turns out to be very robust against influences of the higher levels. As an explanation, we give a general argument that within this fRG scheme the zero-energy degeneracy remains unsplit under quite general conditions and for any size of the trigonal nanodisc. We furthermore discuss the differences in the effective Hamiltonian and their ground states of single nanodiscs and composite bow-tie-shaped systems.
13 pages
References in corpus (11)
- Exact evolution equation for the effective potential
- Magnetism in graphene nano-islands
- Quantum spin-liquid emerging in two-dimensional correlated Dirac fermions
- Metallic Graphene Nanodisks
- Topological Frustration in Graphene Nanoflakes: Magnetic Order and Spin Logic Devices
- Density waves and Cooper pairing on the honeycomb lattice
- Magnetism and correlations in fractionally filled degenerate shells of graphene quantum dots
- Functional renormalization group for Luttinger liquids with impurities
- Coulomb Blockade in Graphene Nanodisks
- Spin Filter, Spin Amplifier and Other Spintronic Applications in Graphene Nanodisks
- Fermionic renormalization group methods for transport through inhomogeneous Luttinger liquids
Cited by in corpus (4)
- Electronic properties of gated triangular graphene quantum dots: Magnetism, correlations, and geometrical effects
- Graphene with vacancies: supernumerary zero modes
- Effective three-particle interactions in low-energy models for multiband systems
- A functional renormalization group approach to electronic structure calculations for systems without translational symmetry