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Thermal diffusivity and chaos in metals without quasiparticles

Abstract

We study the thermal diffusivity DTD_T in models of metals without quasiparticle excitations (`strange metals'). The many-body quantum chaos and transport properties of such metals can be efficiently described by a holographic representation in a gravitational theory in an emergent curved spacetime with an additional spatial dimension. We find that at generic infra-red fixed points DTD_T is always related to parameters characterizing many-body quantum chaos: the butterfly velocity vBv_B, and Lyapunov time τL\tau_L through DTvB2τLD_T \sim v_B^2 \tau_L. The relationship holds independently of the charge density, periodic potential strength or magnetic field at the fixed point. The generality of this result follows from the observation that the thermal conductivity of strange metals depends only on the metric near the horizon of a black hole in the emergent spacetime, and is otherwise insensitive to the profile of any matter fields.Comment: 27 page

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