Aharonov-Bohm interference and the evolution of phase jumps in fractional quantum Hall Fabry-Perot interferometers based on bi-layer graphene

Jehyun Kim, Himanshu Dev, Ravi Kumar, Alexey Ilin, André Haug, Vishal Bhardwaj, Changki Hong, Kenji Watanabe, Takashi Taniguchi, Ady Stern, Yuval Ronen*

*Corresponding author for this work

Research output: Contribution to journalArticle

Abstract

Quasi-particles in fractional quantum Hall states are collective excitations that carry fractional charge and anyonic statistics. While the fractional charge affects semi-classical characteristics such as shot noise and charging energies, the anyonic statistics is most notable in quantum interference phenomena. In this study, we utilize a versatile bilayer graphene-based Fabry-Pérot Interferometer (FPI) that facilitates the study of a broad spectrum of operating regimes, from Coulomb-dominated to Aharonov-Bohm, for both integer and fractional quantum Hall states. Focusing on the ν=1/3 fractional quantum Hall state, we study the Aharonov-Bohm interference of quasi-particles when the magnetic flux through an interference loop and the charge density within the loop are independently varied. When their combined variation is such that the Landau filling remains 1/3 we observe pristine Aharonov-Bohm oscillations with a period of three flux quanta, as is expected from the interference of quasi-particles of one-third of the electron charge. When the combined variation is such that it leads to quasi-particles addition or removal from the loop, phase jumps emerge, and alter the phase evolution. Notably, across all cases, the average phase consistently increases by 2π with each addition of one electron to the loop.
Original languageEnglish
Number of pages47
JournalarXiv.org
DOIs
Publication statusIn preparation - 19 Feb 2024

Bibliographical note

This work was supported by the Quantum Science and Technology Program 2021, by a
research grant from the Schwartz Reisman Collaborative Science Program, which is supported
by the Gerald Schwartz and Heather Reisman Foundation, by a research grant from the Center
for New Scientists at the Weizmann Institute of Science, by grants from the ERC under the
European Union’s Horizon 2020 research and innovation programme (Grant Agreements
LEGOTOP No. 788715 and HQMAT No. 817799), the DFG (CRC/Transregio 183, EI 519/7-1), and by the ISF Quantum Science and Technology (2074/19).

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