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Fractional Charge States in the Magneto-Photoluminescence Spectra of Single-Electron InP/GaInP

机译:单电子INP / GAINP的磁光光致发光光谱中的分数充电状态

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摘要

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.
机译:我们使用了具有Wigner-Seitz Radius〜4的单电子准二维InP / GAINP2岛的光致发光光谱,以测量最低S,P和D单粒子状态的磁场分散在0-10t范围内。测量的分散率显微达到回旋频的九倍降低,表明形成纳米超导ANOON或磁体(EM)状态,其中相应数量的磁通量 - 量子涡和分数是自我生成。我们观察到涡旋数量的线性增加与岛尺寸相对应的临界涡流半径等于BoHR半径和闭合填充拓扑涡流布置。我们的观察说明了涡旋附着在分数量子霍尔效应的复合FEMION理论中的微观机制,允许其在EMS的自定位方面的描述,并代表了用于容错拓扑量子栅极的工程占用的目标的进展。

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