Litcius/Paper detail

Metal-insulator transition and intermediate phases in the kagome lattice Hubbard model

Rong-Yang Sun, Zheng Zhu

2021Physical review. B./Physical review. B20 citationsDOIOpen Access PDF

Abstract

Motivated by the recent discovery of metallic kagome lattice materials, ${\mathrm{AV}}_{3}{\mathrm{Sb}}_{5}$ (A = K, Rb, Cs), we investigate the ground state of the half-filled kagome lattice Hubbard model by employing the density-matrix renormalization group method. We identify a metal-insulator transition around $U\ensuremath{\sim}{U}_{c1}$ and four distinct phases as a function of $U/t$ on narrower cylinders, including a metallic phase at $U<{U}_{c1}$, two insulating intermediate phases (a translational symmetry breaking phase at ${U}_{c1}<U<{U}_{c2}$ and a quantum spin liquid phase at ${U}_{c2}<U<{U}_{c3}$), and the kagome antiferromagnetic phase at $U>{U}_{c3}$. We confirm that the translational symmetry breaking phase is robust for wider cylinders, while the quantum spin liquid phase is smoothly connected to the kagome antiferromagnetic phase with increasing the system width. Moreover, our numerical observations indicate a continuous metal-insulator transition at ${U}_{c1}$ whose nature is consistent with Slater's transition scenario. The magnetic phase transition between two insulating intermediate phases at ${U}_{c2}$ is first order. Our findings may provide insights into exotic kagome lattice materials.

Topics & Concepts

Condensed matter physicsHubbard modelLattice (music)Metal–insulator transitionTransition metalMetalMaterials sciencePhysicsChemistrySuperconductivityMetallurgyBiochemistryCatalysisAcousticsAdvanced Condensed Matter PhysicsPhysics of Superconductivity and MagnetismCold Atom Physics and Bose-Einstein Condensates