Hydrodynamics of the electronic Fermi liquid: a pedagogical overview
arXiv:2504.01249 · doi:10.1088/1361-648X/adfbcd
Abstract
For over a hundred years, electron transport in conductive materials has been primarily described by the Drude model, which assumes that current flow is impeded primarily by momentum-relaxing collisions between electrons and extrinsic objects such as impurities or phonons. In the past decade, however, experiments have increasingly realized ultra-high quality electronic materials that demonstrate a qualitatively distinct method of charge transport called hydrodynamic flow. Hydrodynamic flow occurs when electrons collide much more frequently with each other than with anything else, and in this limit the electric current has long-wavelength collective behavior analogous to that of a classical fluid. While electron hydrodynamics has long been postulated theoretically for solid-state systems, the plethora of recent experimental realizations has reinvigorated the field. Here, we review recent theoretical and experimental progress in understanding hydrodynamic electrons using the (hydrodynamic) Fermi liquid as our prototypical example.
19 pages, 7 figures + references; invited topical review to IOP Journal of Physics: Condensed Matter
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Cited by in corpus (5)
- Electron viscosity and device-dependent variability in four-probe electrical transport in ultra-clean graphene field-effect transistors
- Spectroscopy of Heat Transport and Violation of the Wiedemann--Franz Law in a GaAs Hydrodynamic Mesoscopic Channel
- Electron Hydrodynamics and Bernoulli Effect in Venturi-Shaped 2D Systems
- Tomographic collective modes in a magnetic field
- Corbino-Enhanced Supersonic Acoustic-Emission Threshold in a GaAs Two-Dimensional Electron System