Ergodic edge modes in the 4D quantum Hall effect

The gapless modes on the edge of four-dimensional (4D) quantum Hall droplets are known to be anisotropic: they only propagate in one direction, foliating the 3D boundary into independent 1D conduction channels. This foliation is extremely sensitive to the confining potential and generically yields c...

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Main Author: Benoit Estienne, Blagoje Oblak, Jean-Marie Stéphan
Format: Article
Language:English
Published: SciPost 2021-07-01
Series:SciPost Physics
Online Access:https://scipost.org/SciPostPhys.11.1.016
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spelling doaj-15d0b911770c4815aaa36ae8e492ed5d2021-07-20T12:45:33ZengSciPostSciPost Physics2542-46532021-07-0111101610.21468/SciPostPhys.11.1.016Ergodic edge modes in the 4D quantum Hall effectBenoit Estienne, Blagoje Oblak, Jean-Marie StéphanThe gapless modes on the edge of four-dimensional (4D) quantum Hall droplets are known to be anisotropic: they only propagate in one direction, foliating the 3D boundary into independent 1D conduction channels. This foliation is extremely sensitive to the confining potential and generically yields chaotic flows. Here we study the quantum correlations and entanglement of such edge modes in 4D droplets confined by harmonic traps, whose boundary is a squashed three-sphere. Commensurable trapping frequencies lead to periodic trajectories of electronic guiding centers; the corresponding edge modes propagate independently along $S^1$ fibers, forming a bundle of 1D conformal field theories over a 2D base space. By contrast, incommensurable frequencies produce quasi-periodic, ergodic trajectories, each of which covers its invariant torus densely; the corresponding correlation function of edge modes has fractal features. This wealth of behaviors highlights the sharp differences between 4D Hall droplets and their 2D peers; it also exhibits the dependence of 4D edge modes on the choice of trap, suggesting the existence of observable bifurcations due to droplet deformations.https://scipost.org/SciPostPhys.11.1.016
collection DOAJ
language English
format Article
sources DOAJ
author Benoit Estienne, Blagoje Oblak, Jean-Marie Stéphan
spellingShingle Benoit Estienne, Blagoje Oblak, Jean-Marie Stéphan
Ergodic edge modes in the 4D quantum Hall effect
SciPost Physics
author_facet Benoit Estienne, Blagoje Oblak, Jean-Marie Stéphan
author_sort Benoit Estienne, Blagoje Oblak, Jean-Marie Stéphan
title Ergodic edge modes in the 4D quantum Hall effect
title_short Ergodic edge modes in the 4D quantum Hall effect
title_full Ergodic edge modes in the 4D quantum Hall effect
title_fullStr Ergodic edge modes in the 4D quantum Hall effect
title_full_unstemmed Ergodic edge modes in the 4D quantum Hall effect
title_sort ergodic edge modes in the 4d quantum hall effect
publisher SciPost
series SciPost Physics
issn 2542-4653
publishDate 2021-07-01
description The gapless modes on the edge of four-dimensional (4D) quantum Hall droplets are known to be anisotropic: they only propagate in one direction, foliating the 3D boundary into independent 1D conduction channels. This foliation is extremely sensitive to the confining potential and generically yields chaotic flows. Here we study the quantum correlations and entanglement of such edge modes in 4D droplets confined by harmonic traps, whose boundary is a squashed three-sphere. Commensurable trapping frequencies lead to periodic trajectories of electronic guiding centers; the corresponding edge modes propagate independently along $S^1$ fibers, forming a bundle of 1D conformal field theories over a 2D base space. By contrast, incommensurable frequencies produce quasi-periodic, ergodic trajectories, each of which covers its invariant torus densely; the corresponding correlation function of edge modes has fractal features. This wealth of behaviors highlights the sharp differences between 4D Hall droplets and their 2D peers; it also exhibits the dependence of 4D edge modes on the choice of trap, suggesting the existence of observable bifurcations due to droplet deformations.
url https://scipost.org/SciPostPhys.11.1.016
work_keys_str_mv AT benoitestienneblagojeoblakjeanmariestephan ergodicedgemodesinthe4dquantumhalleffect
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