Hydrodynamic and Ballistic AC transport in 2D Fermi Liquids
Mani Chandra, Gitansh Kataria, Deshdeep Sahdev, Ravishankar Sundaraman

TL;DR
This paper explores how AC transport in 2D Fermi liquids reveals hydrodynamic behavior through robust vortex patterns and correlations, distinguishing it from ballistic and Ohmic regimes, with implications for experimental detection.
Contribution
It demonstrates that AC sources can effectively identify hydrodynamic regimes in 2D Fermi liquids, which are fragile under DC conditions, using nonlocal correlations and vortex dynamics.
Findings
AC sources excite robust hydrodynamic modes despite disorder.
Vortex dynamics in AC regimes resemble classical fluid behavior.
Hydrodynamic regime occupies a larger parameter space than ballistic.
Abstract
Electron transport in clean 2D systems with weak electron-phonon (e-ph) coupling can transition from an Ohmic to a ballistic or a hydrodynamic regime. The ballistic regime occurs when electron-electron (e-e) scattering is weak whereas the hydrodynamic regime arises when this scattering is strong. Despite this difference, we find that vortices and a negative nonlocal resistance believed to be quintessentially hydrodynamic are equally characteristic of the ballistic regime. These non-Ohmic regimes cannot be distinguished in DC transport without changing experimental conditions. Further, as our kinetic calculations show, the hydrodynamic regime in DC transport is highly fragile and is wiped out by even sparse disorder and e-ph scattering. We show that microwave-frequency AC sources by contrast readily excite hydrodynamic modes with current vortices that are robust to disorder and e-ph…
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