Charge transport by holographic Fermi surfaces
Thomas R. Faulkner, Nabil Iqbal, Hong Liu, John McGreevy, David Vegh
Abstract
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Thomas R. Faulkner, Nabil Iqbal, Hong Liu, John McGreevy, David Vegh
Abstract
Open-access reader
We compute the contribution to the conductivity from holographic Fermi surfaces obtained from probe fermions in an AdS charged black hole. This requires calculating a certain part of the one-loop correction to a vector propagator on the charged black hole geometry. We find that the current dissipation is as efficient as possible and the transport lifetime coincides with the single-particle lifetime. In particular, in the case where the spectral density is that of a marginal Fermi liquid, the resistivity is linear in temperature.
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We compute the contribution to the conductivity from holographic Fermi surfaces obtained from probe fermions in an AdS charged black hole. This requires calculating a certain part of the one-loop correction to a vector propagator on the charged black hole geometry. We find that the current dissipation is as efficient as possible and the transport lifetime coincides with the single-particle lifetime. In particular, in the case where the spectral density is that of a marginal Fermi liquid, the resistivity is linear in temperature.
Key concepts: Physics, Fermion, Propagator, Fermi Gamma-ray Space Telescope, Charge (physics), Holography, Condensed matter physics, Black hole (networking)