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Non-local transport and the hydrodynamic shear viscosity in graphene

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abstract

Motivated by recent experimental progress in preparing encapsulated graphene sheets with ultra-high mobilities up to room temperature, we present a theoretical study of dc transport in doped graphene in the hydrodynamic regime. By using the continuity and Navier-Stokes equations, we demonstrate analytically that measurements of non-local resistances in multi-terminal Hall bar devices can be used to extract the hydrodynamic shear viscosity of the two-dimensional (2D) electron liquid in graphene. We also discuss how to probe the viscosity-dominated hydrodynamic transport regime by scanning probe potentiometry and magnetometry. Our approach enables measurements of the viscosity of any 2D electron liquid in the hydrodynamic transport regime.

years

2019 1

verdicts

REJECT 1

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Joule-Thomson Cooling in Graphene

cond-mat.mes-hall · 2019-08-16 · reject · novelty 6.0

A sign error in Eq. (5) makes the paper's predicted Fermi-liquid cooling actually heating, invalidating the central claim.

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  • Joule-Thomson Cooling in Graphene cond-mat.mes-hall · 2019-08-16 · reject · none · ref 2 · internal anchor

    A sign error in Eq. (5) makes the paper's predicted Fermi-liquid cooling actually heating, invalidating the central claim.