Fractional charge states in the magneto-photoluminescence spectra of single-electron InP/GaInP2 quantum dots

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Abstract

We used photoluminescence spectra of single electron quasi-two-dimensional InP/GaInP2 islands having Wigner-Seitz radius ~4 to measure the magnetic-field dispersion of the lowest s, p, and d single-particle states in the range 0–10 T. The measured dispersion revealed up to a nine-fold reduction of the cyclotron frequency, indicating the formation of nano-superconducting anyon or magneto-electron (em) states, in which the corresponding number of magnetic-flux-quanta vortexes and fractional charge were self-generated. We observed a linear increase in the number of vortexes versus the island size, which corresponded to a critical vortex radius equal to the Bohr radius and closed-packed topological vortex arrangements. Our observation explains the microscopic mechanism of vortex attachment in composite fermion theory of the fractional quantum Hall effect, allows its description in terms of self-localization of ems and represents progress towards the goal of engineering anyon properties for fault-tolerant topological quantum gates.

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Mintairov, A., Lebedev, D., Vlasov, A., Bogdanov, A., Ramezanpour, S., & Blundell, S. (2021). Fractional charge states in the magneto-photoluminescence spectra of single-electron InP/GaInP2 quantum dots. Nanomaterials, 11(2), 1–14. https://doi.org/10.3390/nano11020493

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