Transport properties of strongly coupled electron-phonon liquids
Alex Levchenko, J\"org Schmalian

TL;DR
This paper develops a hydrodynamic theory for strongly coupled electron-phonon liquids under phonon drag conditions, deriving transport equations, analyzing relaxation dynamics, and applying the model to magneto-transport, impedance, and noise phenomena in experimental setups.
Contribution
It introduces a comprehensive hydrodynamic framework for electron-phonon fluids with strong coupling, including new equations of motion and relaxation analysis.
Findings
Derived effective viscosity and thermal conductivity of the coupled fluid.
Revealed super-diffusive relaxation on the Fermi surface.
Analyzed frequency-dependent surface impedance and non-equilibrium noise.
Abstract
In this work we consider the hydrodynamic behavior of a coupled electron-phonon fluid, focusing on electronic transport under the conditions of strong phonon drag. This regime occurs when the rate of phonon equilibration due to e.g. umklapp scattering is much slower than the rate of normal electron-phonon collisions. Then phonons and electrons form a coupled out-of-equilibrium state where the total quasi-momentum of the electron-phonon fluid is conserved. A joint flow-velocity emerges as a collective hydrodynamic variable. We derive the equation of motion for this fluid from the underlying microscopic kinetic theory and elucidate its effective viscosity and thermal conductivity. In particular, we derive decay times of arbitrary harmonics of the distribution function and reveal its corresponding super-diffusive relaxation on the Fermi surface. We further consider several applications of…
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