Feasibility of a metamagnetic transition in correlated systems
arXiv:1411.7335 · doi:10.1088/0953-8984/28/11/116001
Abstract
The long-standing issue of the competition between the magnetic field and the Kondo effect, favoring, respectively, triplet and singlet ground states is addressed using a cluster slave-rotor mean field theory for the Hubbard model and its spin-correlated, spin-frustrated extensions in 2 dimension. The metamagnetic jump is established and compared with earlier results of dynamical mean-field theory. The present approach also reproduces the emergent super-exchange energy scale in the insulating side. A scaling is found for the critical Zeeman field in terms of the intrinsic coherence scale just below the metal-insulator transition where the critical spin fluctuations are soft. The conditions for metamagnetism to appear at a reasonable field are also underlined. The Gutzwiller analysis on the 2D Hubbard model and a quantum Monte Carlo calculation on the Heisenberg spin system are performed to check the limiting cases of the cluster slave-rotor results for the Hubbard model. Low-field scaling features for magnetization are discussed.
arxiv version has 8 pages and 7 figures
References in corpus (9)
- Cluster Dynamical Mean Field Theory of the Mott Transition
- Bad-metal behavior reveals Mott quantum criticality in doped Hubbard models
- Self-consistent slave rotor mean field theory for strongly correlated systems
- Observation of a multiferroic critical end point
- Properties of an almost localized Fermi liquid in applied magnetic field revisited: Statistically consistent Gutzwiller approach
- Magnetism and Mott Transition: A Slave-rotor Study
- Giant Magnetic Fluctuations at the Critical Endpoint in Insulating HoMnO3
- Theory of magnetic field-induced metaelectric critical end point in BiMnO
- Field dependent dynamics in the metallic regime of the half-filled Hubbard model