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Dynamic Properties of Two-Dimensional Latticed Holographic System

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arxiv 2104.04189 v2 pith:4V3PI7XV submitted 2021-04-09 hep-th gr-qc

Dynamic Properties of Two-Dimensional Latticed Holographic System

classification hep-th gr-qc
keywords systemanisotropicphasebutterflychargediffusionevenfixed
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We study the anisotropic properties of dynamical quantities: direct current (DC) conductivity, butterfly velocity, and charge diffusion. The anisotropy plays a crucial role in determining the phase structure of the two-lattice system. Even a small deviation from isotropy can lead to distinct phase structures, as well as the IR fixed points of our holographic systems. In particular, for anisotropic cases, the most important property is that the IR fixed point can be non-AdS$_2 \times \mathbb R^2$ even for metallic phases. As that of a one-lattice system, the butterfly velocity and the charge diffusion can also diagnose the quantum phase transition (QPT) in this two-dimensional anisotropic latticed system.

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