Fractional Coulomb blockade for quasiparticle tunneling between edge channels
Abstract
We study the magneto-conductance of a -wide quantum dot in the fractional quantum Hall regime. For a filling factor and in the quantum dot the observed Coulomb resonances show a periodic modulation in magnetic field. This indicates a non-trivial reconstruction of the 2/3 fractional quantum Hall state in the quantum dot. We present a model for the charge stability diagram of the system assuming two compressible regions separated by an incompressible stripe of filling factor and , respectively. From the dependence of the magnetic field period on total magnetic field we construct the zero-field charge density distribution in the quantum dot. The tunneling between the two compressible regions exhibits fractional Coulomb blockade. For both filling factor regions, we extract a fractional charge by comparing to measurements at filling factor 2. With their close relation to quantum Hall Fabry-P\'{e}rot interferometers, our investigations on quantum dots in the fractional quantum Hall regime extend and complement interference experiments investigating the nature of anyonic fractional quantum Hall quasiparticles.
Keywords
Cite
@article{arxiv.2005.12723,
title = {Fractional Coulomb blockade for quasiparticle tunneling between edge channels},
author = {Marc P. Röösli and Michael Hug and Giorgio Nicolí and Peter Märki and Christian Reichl and Bernd Rosenow and Werner Wegscheider and Klaus Ensslin and Thomas Ihn},
journal= {arXiv preprint arXiv:2005.12723},
year = {2021}
}
Comments
7 pages, 4 figures