论文标题

在空间无序的海森贝格自旋系统中观察各向异性独立的磁化动力学

Observation of anisotropy-independent magnetization dynamics in spatially disordered Heisenberg spin systems

论文作者

Franz, Titus, Geier, Sebastian, Hainaut, Clément, Braemer, Adrian, Thaicharoen, Nithiwadee, Hornung, Moritz, Braun, Eduard, Gärttner, Martin, Zürn, Gerhard, Weidemüller, Matthias

论文摘要

朝着对量子多体系统的远程平衡动力学的全面理解迈出的重要一步是识别独立于系统细节的统一特征。我们在实验中观察到无序的海森堡XX-,xxz-和Ising Hamiltonians的磁化松弛动力学的强大特征。我们通过编码合适的Rydberg状态组合中的旋转,在Rydberg原子合奏中意识到这些具有可调各向异性参数和幂律相互作用的Heisenberg自旋模型。我们始终观察到所有被考虑的自旋模型的磁化强度的伸展指数松弛,在适当重新缩放时间后塌陷在单个曲线上。这种强大的短时松弛行为是通过扰动治疗来解释的,该治疗利用了成对耦合中的强障碍,这在大约独立的旋转对方面导致了描述。在小型系统的数值模拟中,我们表明这些旋转构成了近似的局部运动积分,在超过磁化宽松动力学持续时间的时间尺度上,这些旋转至少部分保守。

An important step towards a comprehensive understanding of far-from-equilibrium dynamics of quantum many-body systems is the identification of unifying features that are independent of microscopic details of the system. We experimentally observe such robust features in the magnetization relaxation dynamics of disordered Heisenberg XX-, XXZ- and Ising Hamiltonians. We realize these Heisenberg spin models with tunable anisotropy parameter and power-law interactions in an ensemble of Rydberg atoms by encoding the spin in suitable Rydberg state combinations. We consistently observe stretched-exponential relaxation of magnetization for all considered spin models, collapsing onto a single curve after appropriate rescaling of time. This robust short-time relaxation behavior is explained by a perturbative treatment that exploits the strong disorder in pairwise couplings, which leads to a description in terms of approximately independent pairs of spins. In numerical simulations of small systems, we show that these pairs of spins constitute approximate local integrals of motion, which remain at least partially conserved on a timescale exceeding the duration of the relaxation dynamics of the magnetization.

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