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Interplay between fractional quantum Hall liquid and crystal phases at low filling

机译:在低填充下分数量子厅液体液体和晶相之间的相互作用

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摘要

The nature of the state at low Landau-level filling factors has been a long-standing puzzle in the field of the fractional quantum Hall effect (FQHE). While theoretical calculations suggest that a crystal is favored at filling factors v approx 1/6, experiments show, at somewhat elevated temperatures, minima in the longitudinal resistance that are associated with fractional quantum Hall effect at v=1/7,2/11,2/13,3/17,3/19,1/9,2/15, and 2/17, which belong to the standard sequences v = n/(6n ± 1) and n/(8n ± 1). To address this paradox, we investigate the nature of some of the low-v states, specifically v = 1/7, 2/13, and 1/6, by variational Monte Carlo, density matrix renormalization group, and exact diagonalization methods. We conclude that in the thermodynamic limit, these are likely to be incompressible fractional quantum Hall liquids, albeit with strong short-range crystalline correlations. This suggests a natural explanation for the experimentally observed behavior and a rich phase diagram that admits, in the low-disorder limit, a multitude of crystal-FQHE liquid transitions as the filling factor is reduced.
机译:在低兰德水平灌装因子下的国家的性质在分数量子霍尔效应(FQHE)领域是一个长期拼图。虽然理论计算表明,在填充因子V约1/6,实验表明,在稍微升高的温度下,在v = 1 / 7,2 / 11处与分数量子霍姆效应相关的纵向抗性, 2 / 13,3 / 17,3 / 19,1 / 9,2 / 15和2/17属于标准序列V = N /(6n±1)和N /(8n±1)。为了解决这个悖论,我们调查一些低V态,特别是V = 1/7,2 / 13和1/6,通过变分蒙特卡罗,密度矩阵重整化组和精确的对角化方法。我们得出结论,在热力学限制中,这些可能是不可压缩的分数量子霍米液,尽管具有强大的短距离晶体相关性。这表明对实验观察到的行为和富集的相图的自然解释,其中在低紊乱的极限中,作为填充因子的多个晶体-FQHE液体转变减少。

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  • 来源
    《Physical review》 |2020年第7期|075307.1-075307.12|共12页
  • 作者单位

    Department of Physics The Pennsylvania State University University Park Pennsylvania 16802 USA School of Physics and Engineering and Henan Key Laboratory of Photoelectric Energy Storage Materials and Applications Henan University of Science and Technology Luoyang 471023 China;

    The Institute of Mathematical Sciences HBNI CIT Campus Chennai 600113 India;

    Department of Physics The Pennsylvania State University University Park Pennsylvania 16802 USA;

    Department of Physics The Pennsylvania State University University Park Pennsylvania 16802 USA;

    Institut de Physique Theorique Universite Paris-Saclay CNRS CEA 91190 Gif sur Yvette France;

    Department of Theoretical Physics Wroclaw University of Science and Technology 50-370 Wroclaw Poland;

    Department of Physics The Pennsylvania State University University Park Pennsylvania 16802 USA;

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