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Glassy Dynamics in a Disordered Heisenberg Quantum Spin System

机译:无序的Heisenberg量子旋转系统中的玻璃状动态

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Understanding the dynamics of strongly interacting disordered quantum systems is one of the most challenging problems in modern science, due to features such as the breakdown of thermalization and the emergence of glassy phases of matter. We report on the observation of anomalous relaxation dynamics in an isolated XXZ quantum spin system realized by an ultracold gas of atoms initially prepared in a superposition of two different Rydberg states. The total magnetization is found to exhibit subexponential relaxation analogous to classical glassy dynamics, but in the quantum case this relaxation originates from the buildup of nonclassical correlations. In both experiment and semiclassical simulations, we find the evolution toward a randomized state is independent of the strength of disorder up to a critical value. This hints toward a unifying description of relaxation dynamics in disordered isolated quantum systems, analogous to the generalization of statistical mechanics to out-of-equilibrium scenarios in classical spin glasses.
机译:了解强烈互动无序量子系统的动态是现代科学中最具挑战性的问题之一,因为诸如热化崩溃和物质玻璃阶段的出现等特征,因此是现代科学的最具挑战性问题之一。我们报告了通过在两种不同的rydberg状态的叠加中最初制备的超容器的孤立XXZ量子旋转系统中的异常XXZ量子旋转系统观察。发现总磁化表现出类似于古典玻璃动态的子尺寸松弛,但在Quantum案例中,这种放松源于非化学相关性的累积。在实验和半经典模拟中,我们发现随机状态的进化与临界值的失调强度无关。这提示朝着无序隔离量子系统中的松弛动力学的统一描述,类似于统计力学在典型旋转眼镜中的统计力学的概括。

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