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驱动分数子系统中的动力学疤痕态。

Dynamical Scar States in Driven Fracton Systems.

机构信息

Department of Physics and Center for Theory of Quantum Matter, University of Colorado, Boulder, Colorado 80309, USA.

出版信息

Phys Rev Lett. 2019 Sep 27;123(13):136401. doi: 10.1103/PhysRevLett.123.136401.

Abstract

One-dimensional fracton systems can exhibit perfect localization, failing to reach thermal equilibrium under arbitrary local unitary time evolution. We investigate how this nonergodic behavior manifests in the dynamics of a driven fracton system, specifically a one-dimensional Floquet quantum circuit model featuring conservation of a U(1) charge and its dipole moment. For a typical basis of initial conditions, a majority of states heat up to a thermal state at near-infinite temperature. In contrast, a small number of states flow to a localized steady state under the Floquet time evolution. We refer to these athermal steady states as "dynamical scars," in analogy with the scar states observed in the spectra of certain many-body Hamiltonians. Despite their small number, these dynamical scars are experimentally relevant due to their high overlap with easily prepared product states. Each scar state displays a single agglomerated fracton peak, in agreement with the steady-state configurations of fractonic random circuits. The details of these scars are insensitive to the precise form of the Floquet operator, which is constructed from random unitary matrices. Rather, dynamical scar states arise directly from fracton conservation laws, providing a concrete mechanism for the appearance of scars in systems with constrained quantum dynamics.

摘要

一维分数量子系统可以表现出完美的局域化,在任意局部幺正时间演化下无法达到热平衡。我们研究了这种非遍历行为在驱动分数量子系统动力学中的表现,特别是一维 Floquet 量子电路模型,其具有 U(1)电荷及其偶极矩的守恒。对于典型的初始条件基,大多数状态会升温到接近无穷大温度的热态。相比之下,少数状态会在 Floquet 时间演化下流向局域稳态。我们将这些非热稳态称为“动态疤痕”,这与某些多体哈密顿量谱中观察到的疤痕状态类似。尽管这些动态疤痕的数量很少,但由于它们与容易制备的乘积态具有很高的重叠,因此在实验上具有相关性。每个疤痕状态都显示出单个聚集的分数量子峰,与分数量子随机电路的稳态配置一致。这些疤痕的细节对 Floquet 算子的精确形式不敏感,该算子是由随机幺正矩阵构建的。相反,动态疤痕状态直接源自分数量子守恒定律,为具有约束量子动力学的系统中疤痕的出现提供了一个具体的机制。

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