Anyonic exchange in the time domain is tied to Luttinger type scaling

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Hauptverfasser: Latyshev, Aleksander, Safi, Ines
Format: Preprint
Veröffentlicht: 2025
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author Latyshev, Aleksander
Safi, Ines
author_facet Latyshev, Aleksander
Safi, Ines
contents We consider Fractional Quantum Hall (FQH) edges with a spatially local Quantum Point Contact (QPC). Within the Unified Nonequilibrium Perturbative (UNEP) framework, without assumptions on the underlying Hamiltonian $H_{0}$ for the edges, we search for the associated backscattering DC current and noise compatible with the anyonic time exchange (ATE) constraint with a phase $\barθ$. For that, we infer a nonequilibrium fluctuation-dissipation relation that explicitly involves $\barθ$ and yields an integral equation connecting the nonequilibrium DC current and noise. On one hand, we assume initial thermal states, so that the DC noise is Poissonian. Then the integral equation for the DC current is shown, through the Wiener-Hopf technique, to admit the unique TLL local solution. Therefore, $\barθ$ is necessarily tied to the scaling dimension $δ$, which is robust with respect to edge interactions. On the other hand, we address the "anyon collider" setup where DC noise is super-Poissonian. As the difference between nonequilibrium and equilibrium correlators is fixed, the integral equation admits a unique solution for both nonequilibrium DC backscattering current and super-Poissonian noise, whose explicit temperature dependence is thus determined.
format Preprint
id arxiv_https___arxiv_org_abs_2510_20592
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Anyonic exchange in the time domain is tied to Luttinger type scaling
Latyshev, Aleksander
Safi, Ines
Mesoscale and Nanoscale Physics
Strongly Correlated Electrons
Quantum Physics
We consider Fractional Quantum Hall (FQH) edges with a spatially local Quantum Point Contact (QPC). Within the Unified Nonequilibrium Perturbative (UNEP) framework, without assumptions on the underlying Hamiltonian $H_{0}$ for the edges, we search for the associated backscattering DC current and noise compatible with the anyonic time exchange (ATE) constraint with a phase $\barθ$. For that, we infer a nonequilibrium fluctuation-dissipation relation that explicitly involves $\barθ$ and yields an integral equation connecting the nonequilibrium DC current and noise. On one hand, we assume initial thermal states, so that the DC noise is Poissonian. Then the integral equation for the DC current is shown, through the Wiener-Hopf technique, to admit the unique TLL local solution. Therefore, $\barθ$ is necessarily tied to the scaling dimension $δ$, which is robust with respect to edge interactions. On the other hand, we address the "anyon collider" setup where DC noise is super-Poissonian. As the difference between nonequilibrium and equilibrium correlators is fixed, the integral equation admits a unique solution for both nonequilibrium DC backscattering current and super-Poissonian noise, whose explicit temperature dependence is thus determined.
title Anyonic exchange in the time domain is tied to Luttinger type scaling
topic Mesoscale and Nanoscale Physics
Strongly Correlated Electrons
Quantum Physics
url https://arxiv.org/abs/2510.20592