Exact ground states of correlated electrons on pentagon chains
arXiv:1305.5774 · doi:10.1142/S0217979213300090
Abstract
We construct a class of exact ground states for correlated electrons on pentagon chains in the high density region and discuss their physical properties. In this procedure the Hamiltonian is first cast in a positive semidefinite form using composite operators as a linear combination of creation operators acting on the sites of finite blocks. In the same step, the interaction is also transformed to obtain terms which require for their minimum eigenvalue zero at least one electron on each site. The transformed Hamiltonian matches the original Hamiltonian through a nonlinear system of equations whose solutions place the deduced ground states in restricted regions of the parameter space. In the second step, nonlocal product wave functions in position space are constructed. They are proven to be unique ground states which describe non-saturated ferromagnetic and correlated half metallic states. These solutions emerge when the strength of the Hubbard interaction is site dependent inside the unit cell. In the deduced phases, the interactions tune the bare dispersive band structure such to develop an effective upper flat band. We show that this band flattening effect emerges for a broader class of chains and is not restricted to pentagon chains. For the characterization of the deduced solutions, uniqueness proofs, exact ground state expectation values for long-range hopping amplitudes and correlation functions are also calculated. The study of physical reasons which lead to the appearance of ferromagnetism has revealed a new mechanism for the emergence of an ordered phase, described here in details (because of lack of space see the continuation in the paper).
75 pages, 9 figures
References in corpus (9)
- Strength of effective Coulomb interactions in graphene and graphite
- Electronic Correlations in Oligo-acene and -thiophene Organic Molecular Crystals
- Exact many-electron ground states on the diamond Hubbard chain
- Exactly Solvable Fermion Chain Describing a Fractional Quantum Hall State
- Route to ferromagnetism in organic polymers
- Exact Insulating and Conducting Ground States of a Periodic Anderson Model in Three Dimensions
- Exact ground states of a staggered supersymmetric model for lattice fermions
- Delocalization effect of the Hubbard repulsion in exact terms and two dimensions
- Correlation and confinement induced itinerant ferromagnetism in chain structures
Cited by in corpus (10)
- Dispersion-driven ferromagnetism in a flat-band Hubbard system
- Magnetization process of the S=1/2 Heisenberg antiferromagnet on the floret pentagonal lattice
- Interaction created effective flat bands in conducting polymers
- Exact ferromagnetic ground state of pentagon chains
- Pentagon chain in external fields
- Spin-orbit interactions may relax the rigid conditions leading to flat bands
- Nanograin ferromagnets from non-magnetic bulk materials: the case of gold nanoclusters
- Flat band ferromagnetism without connectivity conditions in the flat band
- Exact results relating spin-orbit interactions in two dimensional strongly correlated systems
- Itinerant surfaces with spin-orbit couplings, correlations and external magnetic fields: Exact results