English

Para-hydrodynamics from weak surface scattering in ultraclean thin flakes

Mesoscale and Nanoscale Physics 2023-04-25 v2

Abstract

Electron hydrodynamics typically emerges in electron fluids with a high electron-electron collision rate. However, new experiments with thin flakes of WTe2_2 have revealed that other momentum-conserving scattering processes can replace the role of the electron-electron interaction, thereby leading to a novel, so-called para-hydrodynamic regime. Here, we develop the kinetic theory for para-hydrodynamic transport. To this end, we consider a ballistic electron gas in a thin 3-dimensional sheet where the momentum-relaxing (mr\ell_{mr}) and momentum-conserving (mc\ell_{mc}) mean free paths are decreased due to boundary scattering from a rough surface. The resulting effective mean free path of the electronic flow is then expressed in terms of microscopic parameters of the sheet boundaries, predicting that a para-hydrodynamic regime with mrmc\ell_{mr}\gg \ell_{mc} emerges generically in ultraclean three-dimensional materials. Using our approach, we recover the transport properties of WTe2_2 in the para-hydrodynamic regime in good agreement with existing experiments.

Keywords

Cite

@article{arxiv.2207.13894,
  title  = {Para-hydrodynamics from weak surface scattering in ultraclean thin flakes},
  author = {Yotam Wolf and Amit Aharon-Steinberg and Binghai Yan and Tobias Holder},
  journal= {arXiv preprint arXiv:2207.13894},
  year   = {2023}
}

Comments

6+6 pages, 6 figures. The published v2 contains only minor changes

R2 v1 2026-06-25T01:17:41.146Z