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arXiv · 1910.13643

Global phase diagram of a spin-orbital Kondo impurity model and the suppression of Fermi-liquid scale

Abstract

Many correlated metallic materials are described by Landau Fermi-liquid theory at low energies, but for Hund metals the Fermi-liquid coherence scale $T_{\text{FL}}$ is found to be surprisingly small. In this Letter, we study the simplest impurity model relevant for Hund metals, the three-channel spin-orbital Kondo model, using the numerical renormalization group (NRG) method and compute its global phase diagram. In this framework, $T_{\text{FL}}$ becomes arbitrarily small close to two new quantum critical points (QCPs) which we identify by tuning the spin or spin-orbital Kondo couplings into the ferromagnetic regimes. We find quantum phase transitions to a singular Fermi-liquid or a novel non-Fermi-liquid phase. The new non-Fermi-liquid phase shows frustrated behavior involving alternating overscreenings in spin and orbital sectors, with universal power laws in the spin ($ω^{-1/5}$), orbital ($ω^{1/5}$) and spin-orbital ($ω^1$) dynamical susceptibilities. These power laws, and the NRG eigenlevel spectra, can be fully understood using conformal field theory arguments, which also clarify the nature of the non-Fermi-liquid phase.

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Y. Wang, E. Walter, S. -S. B. Lee, K. M. Stadler, J. von Delft, A. Weichselbaum, G. Kotliar. 2019-10-31. Global phase diagram of a spin-orbital Kondo impurity model and the suppression of Fermi-liquid scale. https://doi.org/10.1103/physrevlett.124.136406

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