Litcius/Paper detail

Stokes flow around an obstacle in viscous two-dimensional electron liquid

G. M. Gusev, A. S. Jaroshevich, A. D. Levin, Z. D. Kvon, A. K. Bakarov

2020Scientific Reports53 citationsDOIOpen Access PDF

Abstract

The electronic analog of the Poiseuille flow is the transport in a narrow channel with disordered edges that scatter electrons in a diffuse way. In the hydrodynamic regime, the resistivity decreases with temperature, referred to as the Gurzhi effect, distinct from conventional Ohmic behaviour. We studied experimentally an electronic analog of the Stokes flow around a disc immersed in a two-dimensional viscous liquid. The circle obstacle results in an additive contribution to resistivity. If specular boundary conditions apply, it is no longer possible to detect Poiseuille type flow and the Gurzhi effect. However, in flow through a channel with a circular obstacle, the resistivity decreases with temperature. By tuning the temperature, we observed the transport signatures of the ballistic and hydrodynamic regimes on the length scale of disc size. Our experimental results confirm theoretical predictions.

Topics & Concepts

Hagen–Poiseuille equationMechanicsFlow (mathematics)Electrical resistivity and conductivityOhmic contactStokes flowPhysicsBoundary (topology)Specular reflectionObstacleMaterials scienceOpen-channel flowElectronCondensed matter physicsChannel (broadcasting)Viscous liquidClassical mechanicsStokes' lawOpticsConductivityBallistic conductionThermal conductionBoundary value problemScale (ratio)Drop (telecommunication)Length scaleStokes numberQuantum and electron transport phenomenaOrganic and Molecular Conductors ResearchQuantum, superfluid, helium dynamics
Stokes flow around an obstacle in viscous two-dimensional electron liquid | Litcius