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Avoided quantum criticality in exact numerical simulations of a single disordered Weyl cone

机译:避免了单一无序Weyl Cone的精确数值模拟中的量子临界性

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摘要

Existing theoretical works differ on whether three-dimensional Dirac and Weyl semimetals are stable to a short-range-correlated random potential. Numerical evidence suggests the semimetal to he unstable, while some field-theoretic instanlon calculations have found it to be stable. The differences go beyond method: the continuum field-theoretic works use a single, perfectly linear Weyl cone, while numerical works use tight-binding lattice models which inherently have band curvature and multiple Weyl cones. In this work, we bridge this gap by performing exact numerics on the same model used in analytic treatments, and we find that all phenomena associated with rare regions near the Weyl node energy found in lattice models persist in the continuum theory: The density of states is nonzero and exhibits an avoided transition. In addition to characterizing this transition, we find rare states and show that they have the expected behavior. The simulations utilize sparse matrix techniques with formally dense matrices; doing so allows us to reach Hilbert space sizes upwards of 107 states, substantially larger than anything achieved before.
机译:现有的理论作品对三维DIRAC和Weyl半定是对短距离相关的随机电位稳定的不同。数值证据表明他不稳定的半决赛,而一些现场理论的instanlon计算已经发现它是稳定的。差异超出了方法:连续体场 - 理论作品使用单个,完美的线性Weyl锥,而数值作品使用紧密绑定的晶格模型,其固有地具有带曲率和多个Weyl锥体。在这项工作中,我们通过在分析治疗中使用的相同模型上进行确切的数字来弥合这种差距,并且我们发现与晶格模型中发现的Weyl节点能量附近的雷怪地区相关的所有现象持续存在:状态的密度是非零,展示避免过渡。除了表征这一转变之外,我们还会发现罕见的州,并表明他们有预期的行为。该模拟利用具有正式密集的基质的稀疏矩阵技术;这样做允许我们到达107个州以上的希尔伯特空间尺寸,比以前所实现的任何东西都大大大。

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  • 来源
    《Physical review.B.Condensed matter and materials physics》 |2020年第10期|100201.1-100201.6|共6页
  • 作者单位

    Department of Physics and Astronomy Center for Materials Theory Rutgers University Piscataway New Jersey 08854 USA;

    Physics Department Princeton University Princeton New Jersey 08544 USA Institute for Advanced Study Princeton New Jersey 08540 USA;

    Condensed Matter Theory Center and Joint Quantum Institute Department of Physics University of Maryland College Park Maryland 20742 USA;

    Department of Physics and Astronomy Center for Materials Theory Rutgers University Piscataway New Jersey 08854 USA;

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