Sahay Rahul, Machado Francisco, Ye Bingtian, Laumann Chris R, Yao Norman Y
Department of Physics, University of California, Berkeley, California 94720, USA.
Department of Physics, Boston University, Boston, Massachusetts 02215, USA.
Phys Rev Lett. 2021 Mar 12;126(10):100604. doi: 10.1103/PhysRevLett.126.100604.
Strongly disordered systems in the many-body localized (MBL) phase can exhibit ground state order in highly excited eigenstates. The interplay between localization, symmetry, and topology has led to the characterization of a broad landscape of MBL phases ranging from spin glasses and time crystals to symmetry protected topological phases. Understanding the nature of phase transitions between these different forms of eigenstate order remains an essential open question. Here, we conjecture that no direct transition between distinct MBL orders can occur in one dimension; rather, an ergodic phase always intervenes. Motivated by recent advances in Rydberg-atom-based quantum simulation, we propose an experimental protocol where the intervening ergodic phase can be diagnosed via the dynamics of local observables.
处于多体局域化(MBL)相的强无序系统在高激发本征态中可展现基态序。局域化、对称性和拓扑结构之间的相互作用已促成了对从自旋玻璃态、时间晶体到对称保护拓扑相的广泛MBL相图景的刻画。理解这些不同形式的本征态序之间的相变本质仍是一个重要的开放性问题。在此,我们推测在一维中不同MBL序之间不会发生直接转变;相反,一个遍历相总会介入其中。受基于里德堡原子的量子模拟近期进展的启发,我们提出一种实验方案,其中可通过局部可观测量的动力学来诊断介入的遍历相。