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Enhanced Strange Metallicity due to Hubbard-U Coulomb Repulsion
Andrew Hardy1,2, Olivier Parcollet2,3, Antoine Georges2,4,5,6
1University of Toronto, Department of Physics, 60 Saint George Street, Toronto, Ontario M5S 1A7, Canada.
Abstract:
We solve a model of electrons with Hubbard-U Coulomb repulsion and a random Yukawa coupling to a two-dimensional bosonic bath, using an extended dynamical mean field theory scheme. Our model exhibits a quantum critical point, at which the repulsive component of the electron interactions strongly enhances the effects of the quantum critical bosonic fluctuations on the electrons, leading to a breakdown of Fermi liquid physics and the formation of a strange metal with "Planckian" [O(k_{B}T/ℏ)] quasiparticle decay rates at low temperatures T→0. Furthermore, the eventual Mott transition that occurs as the repulsion is increased seemingly bounds the maximum decay rate in the strange metal. Our results provide insight into low-temperature strange metallicity observed in proximity to a Mott transition, as is observed, for instance, in recent experiments on certain moiré materials.
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