论文标题
大离散时间晶体中的凝结物理物理
Condensed matter physics in big discrete time crystals
论文作者
论文摘要
我们回顾了在振动镜上共弹的超速原子的Bose-Einstein冷凝物(BEC)中产生的离散时间晶体的应用,以在时间维度中调查冷凝物质现象。这种弹跳的BEC系统可以表现出时间翻译对称性的戏剧性破裂,从而可以创建具有大约100个时间晶格位点的离散时间晶体,适合托管广泛的时间凝结物质现象。我们首先在时间维度中考虑单粒子凝结物质现象,其中包括由于时间障碍,拓扑时间晶体和准晶体结构而导致的安德森定位。然后,我们讨论多体时间凝结物质现象,包括随时间的莫特绝缘体阶段,时间上的多体定位,多体拓扑时间晶体和具有远距离外来相互作用的时间晶体。我们还讨论了两个(或三个)维度晶格的构建,涉及两个(或三个)正交振荡镜之间的BEC弹跳以及在45度以45度振荡的镜子之间弹跳。后一种配置支持多功能的Möbius带状几何形状,该几何形状可以容纳各种二维时晶格,包括蜂窝时间晶格和Lieb Square Time Grattice。最后,我们讨论了一个六维时空晶格的构建,该晶格基于被困在三维光学晶格中的定期驱动的BEC。
We review the application of discrete time crystals created in a Bose-Einstein condensate (BEC) of ultracold atoms bouncing resonantly on an oscillating mirror to the investigation of condensed matter phenomena in the time dimension. Such a bouncing BEC system can exhibit dramatic breaking of time-translation symmetry, allowing the creation of discrete time crystals having up to about 100 temporal lattice sites and suitable for hosting a broad range of temporal condensed matter phenomena. We first consider single-particle condensed matter phenomena in the time dimension which include Anderson localization due to temporal disorder, topological time crystals, and quasi-crystal structures in time. We then discuss many-body temporal condensed matter phenomena including Mott insulator phases in time, many-body localization in time, many-body topological time crystals and time crystals having long-range exotic interactions. We also discuss the construction of two (or three) dimensional time lattices, involving the bouncing of a BEC between two (or three) orthogonal oscillating mirrors and between two oscillating mirrors oriented at 45-degrees. The latter configuration supports a versatile Möbius strip geometry which can host a variety of two-dimensional time lattices including a honeycomb time lattice and a Lieb square time lattice. Finally, we discuss the construction of a six-dimensional time-space lattice which is based on periodically driven BECs trapped in a three-dimensional optical lattice.