Edge-state interferometry as a probe of local flux in isolated quantum Hall systems
Abstract
Quantum point contacts (QPCs) are essential tools for transport experiments in solid-state systems, enabling the detection of fractional charges and anyonic braiding statistics. Realizing analogous transport setups in isolated quantum-simulation platforms, such as ultracold atoms, remains challenging, since it typically requires coupling to external reservoirs. Here we show that the scattering properties of chiral edge states at a QPC can instead be extracted directly from the stationary edge currents of an isolated, reservoir-free lattice system. Exploiting the sensitivity of this scattering to Aharonov-Bohm-type phases, we propose an equilibrium protocol to detect local magnetic fluxes from ground-state edge currents. We further introduce a dynamical scheme, robust against finite temperature and particle-number fluctuations, based on the post-quench evolution following a sudden potential-bias removal. Since anyonic excitations are themselves associated with a local, quantized magnetic flux, our approach should extend to probing anyonic statistical phases in quantum-engineered platforms.
Keywords
Cite
@article{arxiv.2607.10868,
title = {Edge-state interferometry as a probe of local flux in isolated quantum Hall systems},
author = {Botao Wang and Nathan Goldman and André Eckardt},
journal= {arXiv preprint arXiv:2607.10868},
year = {2026}
}
Comments
9 pages, 4+1 figures; comments are welcome