论文标题
通过奇怪的相关器检测子系统对称受保护的拓扑顺序
Detecting Subsystem Symmetry Protected Topological Order Through Strange Correlators
论文作者
论文摘要
我们采用奇怪的相关因子来检测2D子系统对称性保护拓扑(SSPT)阶段,这些阶段是受子系统对称性保护的非平凡拓扑阶段。具体而言,在存在统一磁场的情况下,我们在2D群集模型中分析构建有效的奇怪相关器,然后在量子退火方案中执行投影仪量子蒙特卡洛模拟。我们发现,奇怪的相关器显示在SSPT阶段的远距离相关性,从中我们定义了奇怪的顺序参数,以表征低场处的SSPT相之间的拓扑相变,而在高场处的琐事parmagnetic阶段。因此,在SSPT相位的1D物理边界上的完全局部零模式的检测已转化为具有周期性边界条件的本地运算符的批量相关测量。我们还发现奇怪的相关器的有趣空间各向异性可以本质地追溯到子系统对称的空间各向异性的性质,该符号在2D群集模型中保护SSPT顺序。因此,通过模拟奇怪的相关因子,我们在SSPT阶段的简单有效检测上提供了第一个无偏见的大规模量子蒙特卡洛模拟,并开放了研究新型相互作用拓扑相的微妙而基本性质的途径。
We employ strange correlators to detect 2D subsystem symmetry-protected topological (SSPT) phases which are nontrivial topological phases protected by subsystem symmetries. Specifically, we analytically construct efficient strange correlators in the 2D cluster model in the presence of a uniform magnetic field and then perform the projector Quantum Monte Carlo simulation within the quantum annealing scheme. We find that strange correlators show the long-range correlation in the SSPT phase, from which we define strange order parameters to characterize the topological phase transition between the SSPT phase at low fields and the trivial paramagnetic phase at high fields. Thus, the detection of the fully localized zero modes on the 1D physical boundary of SSPT phase has been transformed into the bulk correlation measurement about the local operators with the periodic boundary condition. We also find interesting spatial anisotropy of a strange correlator, which can be intrinsically traced back to the nature of spatial anisotropy of subsystem symmetries that protect SSPT order in the 2D cluster model. By simulating strange correlators, we, therefore, provide the first unbiased large-scale quantum Monte Carlo simulation on the easy and efficient detection in the SSPT phase and open the avenue of the investigation of the subtle yet fundamental nature of the novel interacting topological phases.