Correlated electrons systems on the Apollonian network
Andre M. C. Souza, Hans Herrmann
Abstract
Strongly correlated electrons on an Apollonian network are studied using the Hubbard model. Ground-state and thermodynamic properties, including specific heat, magnetic susceptibility, spin-spin correlation function, double occupancy and one-electron transfer, are evaluated applying direct diagonalization and quantum Monte Carlo. The results support several types of magnetic behavior. In the strong-coupling limit, the quantum anisotropic spin 1/2 Heisenberg model is used and the phase diagram is discussed using the renormalization group method. For ferromagnetic coupling, we always observe the existence of long-range order. For antiferromagnetic coupling, we find a paramagnetic phase for all finite temperatures.
Create a lesson
Related papers
Bound states, resonances, and their thermodynamic properties in pseudospin-1 systems with short-range impurities
E. V. Gorbar, Pavlo Sukhachov
Engineering tunable p-wave magnetism in antiferromagnetic bilayers
Yu-Han Lin, Jin-Wei Dong, Ziqiang Wang et al.
Higher-Winding Fractionalization
Kishore Iyer, Christophe Mora, Daniele Guerci
Green-function Zeros Encode Competing Mott and Charge-ordering Scales
Peizhi Mai, Philip W. Phillips
Chiral Color Ice: Exact Local Handedness Constraints and Möbius Zero Modes in Frustrated Magnets
Péter Kránitz, Yasir Iqbal, Karlo Penc
Pseudospin Dynamics of Charge Order
Ping Tang