English

Pulsating flow and boundary layers in viscous electronic hydrodynamics

Strongly Correlated Electrons 2018-05-02 v2 Fluid Dynamics

Abstract

Motivated by experiments on a hydrodynamic regime in electron transport, we study the effect of an oscillating electric field in such a setting. We consider a long two-dimensional channel of width LL, whose geometrical simplicity allows an analytical study as well as hopefully permitting experimental realisation. The response depends on viscosity ν\nu, driving frequency, ω\omega and ohmic heating coefficient γ\gamma via the dimensionless complex variable L2ν(iω+γ)=iΩ+Σ\frac{L^2}{\nu}(i\omega +\gamma)=i\Omega +\Sigma. While at small Ω\Omega, we recover the static solution, a new regime appears at large Ω\Omega with the emergence of a boundary layer. This includes a splitting of the location of maximal flow velocity from the centre towards the edges of the boundary layer, an an increasingly reactive nature of the response, with the phase shift of the response varying across the channel. The scaling of the total optical conductance with LL differs between the two regimes, while its frequency dependence resembles a Drude form throughout, even in the complete absence of ohmic heating, against which, at the same time, our results are stable. Current estimates for transport coefficients in graphene and delafossites suggest that the boundary layer regime should be experimentally accessible.

Keywords

Cite

@article{arxiv.1710.00354,
  title  = {Pulsating flow and boundary layers in viscous electronic hydrodynamics},
  author = {Roderich Moessner and Piotr Surówka and Piotr Witkowski},
  journal= {arXiv preprint arXiv:1710.00354},
  year   = {2018}
}

Comments

5 pages, 3 figures, the title has been changed, the manuscript has been substantially modified and references updated

R2 v1 2026-06-22T22:00:10.107Z