Ballistic-to-diffusive transition in engineered counter-propagating quantum Hall channels
Abstract
Exotic quantum Hall systems hosting counter-propagating edge states can show seemingly non-universal transport regimes, usually depending on the size of the sample. We experimentally probe transport in a quantum Hall sample engineered to host a tunable number of counter-propagating edge states. The latter are coupled by Landauer reservoirs, which force charge equilibration over a tunable effective length. We show that charge transport is determined by the balance of up- and downstream channels, with a ballistic regime emerging for unequal numbers of channels. For equal numbers, we observe a transition to a critical diffusive regime, characterized by a diverging equilibration length. Our approach allows simulating the equilibration of hole-conjugate states and other exotic quantum Hall effects with fully controlled parameters using well-understood quantum Hall states.
Cite
@article{arxiv.2505.05386,
title = {Ballistic-to-diffusive transition in engineered counter-propagating quantum Hall channels},
author = {Aifei Zhang and Kenji Watanabe and Takashi Taniguchi and Patrice Roche and Carles Altimiras and François D. Parmentier and Olivier Maillet},
journal= {arXiv preprint arXiv:2505.05386},
year = {2026}
}
Comments
13 pages (6 main + 7 SI), 12 figures (4 main + 8 SI). Final version close to published