Magoni Matteo, Mazza Paolo P, Lesanovsky Igor
Institut für Theoretische Physik, Eberhard Karls Universität Tübingen, Auf der Morgenstelle 14, 72076 Tübingen, Germany.
School of Physics and Astronomy and Centre for the Mathematics and Theoretical Physics of Quantum Non-Equilibrium Systems, The University of Nottingham, Nottingham NG7 2RD, United Kingdom.
Phys Rev Lett. 2021 Mar 12;126(10):103002. doi: 10.1103/PhysRevLett.126.103002.
We explore the relaxation dynamics of elementary spin clusters in a kinetically constrained spin system. Inspired by experiments with Rydberg lattice gases, we focus on the situation in which an excited spin leads to a "facilitated" excitation of a neighboring spin. We show that even weak interactions that extend beyond nearest neighbors can have a dramatic impact on the relaxation behavior: they generate a linear potential, which under certain conditions leads to the onset of Bloch oscillations of spin clusters. These hinder the expansion of a cluster and, more generally, the relaxation of many-body states toward equilibrium. This shows that nonergodic behavior in kinetically constrained systems may occur as a consequence of the interplay between reduced connectivity of many-body states and weak interparticle interactions. We furthermore show that the emergent Bloch oscillations identified here can be detected in experiment through measurements of the Rydberg atom density and discuss how spin-orbit coupling between internal and external degrees of freedom of spin clusters can be used to control their relaxation behavior.
我们研究了动力学受限自旋系统中基本自旋簇的弛豫动力学。受里德堡晶格气体实验的启发,我们关注这样一种情况:一个激发的自旋会导致相邻自旋的“易化”激发。我们表明,即使是超出最近邻的微弱相互作用,也会对弛豫行为产生显著影响:它们产生一个线性势,在某些条件下会导致自旋簇的布洛赫振荡的出现。这阻碍了簇的扩展,更普遍地说,阻碍了多体状态向平衡态的弛豫。这表明,动力学受限系统中的非遍历行为可能是多体状态连通性降低与微弱粒子间相互作用之间相互作用的结果。我们还表明,这里识别出的出现的布洛赫振荡可以通过测量里德堡原子密度在实验中检测到,并讨论了自旋簇内部和外部自由度之间的自旋 - 轨道耦合如何用于控制它们的弛豫行为。