Quantum Hall Antidot as a Fractional Coulombmeter

Fuente: arXiv
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Main Authors: Di Luca, Mario, Hajigeorgiou, Emily, Zhou, Zekang, Lotrič, Tevž, Feng, Tengyan, Watanabe, Kenji, Taniguchi, Takashi, Simon, Steven H., Banerjee, Mitali
Format: Preprint
Published: 2025
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author Di Luca, Mario
Hajigeorgiou, Emily
Zhou, Zekang
Lotrič, Tevž
Feng, Tengyan
Watanabe, Kenji
Taniguchi, Takashi
Simon, Steven H.
Banerjee, Mitali
author_facet Di Luca, Mario
Hajigeorgiou, Emily
Zhou, Zekang
Lotrič, Tevž
Feng, Tengyan
Watanabe, Kenji
Taniguchi, Takashi
Simon, Steven H.
Banerjee, Mitali
contents The detection of fractionally charged quasiparticles, which arise in the fractional quantum Hall regime, is of fundamental importance for probing their exotic quantum properties. While electronic interferometers have been central to probe their statistical properties, their interpretation is often complicated by bulk-edge interactions. Antidots, potential hills in the quantum Hall regime, are particularly valuable in this context, as they overcome the geometric limitations of conventional designs and act as controlled impurities within a quantum point contact. Furthermore, antidots allow for quasiparticle charge detection through straightforward conductance measurements, replacing the need for more demanding techniques. In this work, we employ a gate-defined bilayer graphene antidot operating in the Coulomb-dominated regime to study quasiparticle tunneling in both integer and fractional quantum Hall states. We show that the gate-voltage period and the oscillation slope directly reveal the charge of the tunneling quasiparticles, providing a practical method to measure fractional charge in graphene. We report direct measurements of fractional charge, finding $q = e/3$ at $ν= 4/3$, 5/3 and 7/3, $q = 2e/3$ at $ν= 2/3$ and $q = 3e/5$ at $ν= 3/5$, while at $ν= 8/3$ we observe signatures of both $e/3$ and $2e/3$ tunneling charge. The simplicity and tunability of this design open a pathway to extend antidot-based charge measurements to other van der Waals materials, establishing antidots as a powerful and broadly applicable platform to study the quantum Hall effect.
format Preprint
id arxiv_https___arxiv_org_abs_2509_04209
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Quantum Hall Antidot as a Fractional Coulombmeter
Di Luca, Mario
Hajigeorgiou, Emily
Zhou, Zekang
Lotrič, Tevž
Feng, Tengyan
Watanabe, Kenji
Taniguchi, Takashi
Simon, Steven H.
Banerjee, Mitali
Mesoscale and Nanoscale Physics
The detection of fractionally charged quasiparticles, which arise in the fractional quantum Hall regime, is of fundamental importance for probing their exotic quantum properties. While electronic interferometers have been central to probe their statistical properties, their interpretation is often complicated by bulk-edge interactions. Antidots, potential hills in the quantum Hall regime, are particularly valuable in this context, as they overcome the geometric limitations of conventional designs and act as controlled impurities within a quantum point contact. Furthermore, antidots allow for quasiparticle charge detection through straightforward conductance measurements, replacing the need for more demanding techniques. In this work, we employ a gate-defined bilayer graphene antidot operating in the Coulomb-dominated regime to study quasiparticle tunneling in both integer and fractional quantum Hall states. We show that the gate-voltage period and the oscillation slope directly reveal the charge of the tunneling quasiparticles, providing a practical method to measure fractional charge in graphene. We report direct measurements of fractional charge, finding $q = e/3$ at $ν= 4/3$, 5/3 and 7/3, $q = 2e/3$ at $ν= 2/3$ and $q = 3e/5$ at $ν= 3/5$, while at $ν= 8/3$ we observe signatures of both $e/3$ and $2e/3$ tunneling charge. The simplicity and tunability of this design open a pathway to extend antidot-based charge measurements to other van der Waals materials, establishing antidots as a powerful and broadly applicable platform to study the quantum Hall effect.
title Quantum Hall Antidot as a Fractional Coulombmeter
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2509.04209