Two-dimensional electron honey: highly viscous electron fluid in which transverse magnetosonic waves can propagate
arXiv:1810.10241 · doi:10.1103/PhysRevLett.123.236801
Abstract
One of the main macroscopic differences between ordinary and highly viscous fluids is the lack of transverse sound in the first and possibility of its excitation in the second. In modern high-mobility conductors (Weyl semimetals, best-quality quantum wells, and graphene) electrons can form a viscous fluid at low temperatures. In this work we develop high-frequency hydrodynamics of two-dimensional highly viscous electron fluids in magnetic field. Such fluids are characterized by simultaneous presence of the excitations associated with the elastic stress (transverse sound) as well as with the violation of the local charge neutrality (plasmons). We demonstrate that both the viscoelastic and the plasmonic components of a flow can exhibit the viscous resonance that was recently proposed for charged viscous fluids. This resonance is related to rotation of the viscous stress tensor of a charged fluid in magnetic field. We argue that the viscous resonance is responsible for the peak and the peculiarities observed in photoresistance and photovoltage of the ultra-high mobility GaAs quantum wells. We conclude that a highly viscous electron fluid ("electron honey") is realized in those structures.
14 pages, 5 figures
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- Non-local hydrodynamic transport and collective excitations in Dirac fluids
- Quantum Paracrystalline Shear Modes of the Electron Liquid
- Hall effect in Poiseuille flow of two-dimensional electron fluid
- Non-linear Transport Phenomena and Current-induced Hydrodynamics in Ultra-high Mobility Two-dimensional Electron Gas
- Superballistic conduction in hydrodynamic antidot graphene superlattices
- Observation of High Harmonics of the Cyclotron Resonance in Microwave Transmission of a High-Mobility Two-Dimensional Electron System
- Plasmonic quantum nonlinear Hall effect in noncentrosymmetric 2D materials
- Dipole excitation of collective modes in viscous two-dimensional electron systems
- Micromagnets dramatically enhance effects of viscous hydrodynamic flow in two-dimensional electron fluid
- Spin imaging of Poiseuille flow of viscous electronic fluid
- Rotational viscosity in spin resonance of hydrodynamic electrons
- Driving Viscous Hydrodynamics in Bulk Electron Flow in Graphene Using Micromagnets
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- Giant Hall effect in the ballistic transport of two-dimensional electrons
- Shear Bernstein modes in a two-dimensional electron liquid
- Probing Fermi liquid exceptional points through AC conductivity
- Thresholdless excitation of edge plasmons by transverse current
- Ballistic flow of two-dimensional electrons in a magnetic field
- Superballistic paradox in electron fluids: Evidence of tomographic transport
- Acoustic plasmons and isotropic short-range interaction in two-component electron liquids
- Selective damping of plasmons in coupled two-dimensional systems by Coulomb drag
- Nonlocal optical responses of ultrapure metals in the hydrodynamic regime
- Tomographic collective modes in a magnetic field
- Tunable viscous layers in Corbino geometry using density junctions
- Ballistic-to-hydrodynamic transition and collective modes for two-dimensional electron systems in magnetic field
- Ballistic-hydrodynamic phase transition in flow of two-dimensional electrons