Quantum phase transitions and collapse of the Mott gap in the dimensional half-filled Hubbard model
arXiv:cond-mat/9910471 · doi:10.1103/PhysRevB.62.2377
Abstract
We study the low-energy asymptotics of the half-filled Hubbard model with a circular Fermi surface in continuous dimensions, based on the one-loop renormalization-group (RG) method. Peculiarity of the dimensions is incorporated through the mathematica structure of the elementary particle-partcile (PP) and particle-hole (PH) loops: infrared logarithmic singularity of the PH loop is smeared for . The RG flows indicate that a quantum phase transition (QPT) from a metallic phase to the Mott insulator phase occurs at a finite on-site Coulomb repulsion for . We also discuss effects of randomness.
12 pages, 10 eps figures
References in corpus (4)
- Confinement of Interchain Hopping by Umklapp Scattering in Two-Coupled Chains
- Renormalization-group approach to the metal-insulator transitions in (DCNQI)_2M (DCNQI is N,N'-dicyanoquinonediimine and M=Ag, Cu)
- Collapse of Charge Gap in Random Mott Insulators
- Spin-Density-Wave Phase Transitions in Quasi-One-Dimensional Dimerized Quarter-Filled Organic Conductors