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Mapping between finite temperature classical and zero temperature quantum systems: Quantum critical jamming and quantum dynamical heterogeneities

机译:有限温度经典和零温度量子系统之间的映射:量子临界干扰和量子动力学异质性

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摘要

Many electronic systems (e.g., the cuprate superconductors and heavy fermions) exhibit striking features in their dynamical response over a prominent range of experimental parameters.While there are some empirical suggestions of particular increasing length scales that accompany such transitions in some cases, this identification is not universal and in numerous instances no large correlation length is evident.To better understand, as a matter of principle, such behavior in quantum systems, we extend a known mapping (earlier studied in stochastic or supersymmetric quantum mechanics) between finite temperature classical Fokker-Planck systems and related quantum systems at zero temperature to include general nonequilibrium dynamics.Unlike Feynman mappings or stochastic quantization methods in field theories (as well as more recent holographic type dualities), the classical systems that we consider and their quantum duals reside in the same number of space-time dimensions.The upshot of our very broad and rigorous result is that a Wick rotation exactly relates (i) the dynamics in general finite temperature classical dissipative systems to (ii) zero temperature dynamics in the corresponding dual many-body quantum systems.Using this correspondence, we illustrate that, even in the absence of imposed disorder, many continuum quantum fluid systems (and possible lattice counterparts) may exhibit a zero-point "quantum dynamical heterogeneity" wherein the dynamics, at a given instant, is spatially nonuniform.While the static length scales accompanying this phenomenon do not seem to exhibit a clear divergence in standard correlation functions, the length scale of the dynamical heterogeneities can increase dramatically.We further study "quantum jamming" and illustrate how a hard-core bosonic system can undergo a zero temperature quantum critical metal-to-insulator-type transition with an extremely large effective dynamical exponent z > 4 that is consistent with length scales that increase far more slowly than the relaxation time as a putative critical transition is approached.Similar results may hold for spin-liquid-type as well as interacting electronic systems.We suggest ways to analyze experimental data in order to adduce such phenomena.Our approach may be used to analyze other quenched quantum systems.
机译:许多电子系统(例如,铜酸盐超导体和重费米子)在很宽的实验参数范围内都表现出惊人的动态响应。为了在原理上更好地理解量子系统中的这种行为,我们在有限温度经典Fokker-方程之间扩展了一个已知的映射(先前在随机或超对称量子力学中进行了研究)。普朗克系统和相关的量子系统在零温度下包含一般的非平衡动力学,与场论中的费曼映射或随机量化方法(以及最近的全息类型对偶)不同,我们考虑的经典系统及其量子对偶位于同一位置时空维数.ou的结果r非常广泛而严格的结果是,维克旋转精确地将(i)通用有限温度经典耗散系统的动力学与(ii)对应的双多体量子系统中的零温度动力学相关联。即使没有强加的无序性,许多连续体量子流体系统(和可能的晶格对应物)也可能表现出零点“量子动力学异质性”,其中动力学在给定的瞬间在空间上是不均匀的。现象似乎在标准相关函数中没有表现出明显的分歧,动力学异质性的长度尺度可以显着增加。我们进一步研究“量子干扰”,并说明硬核Bosonic系统如何经历零温度量子临界金属-到绝缘子类型的过渡,具有非常大的有效动态指数z> 4,与长度尺度一致当接近一个假定的临界跃迁时,其增长远比弛豫时间慢得多。对于自旋液体型以及相互作用的电子系统,可能会有相似的结果。我们建议分析实验数据的方法以归纳此类现象。用于分析其他淬灭的量子系统。

著录项

  • 来源
    《Physical review》 |2013年第18期|184202.1-184202.19|共19页
  • 作者单位

    Department of Physics, Washington University, St.Louis,Missouri 63130, USA,Kavli Institute for Theoretical Physics,Santa Barbara, California 93106, USA;

    Department of Physics, Washington University, St.Louis,Missouri 63130, USA;

    Theoretical Division,Los Alamos National Laboratory, New Mexico 87545, USA;

    Theoretical Division,Los Alamos National Laboratory, New Mexico 87545, USA,NORDITA,Roslagstullsbacken 23,106 91 Stockholm,Sweden;

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  • 正文语种 eng
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  • 关键词

    quantum statistical mechanics;

    机译:量子统计力学;

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