论文标题
全光耗散离散时间晶体
All-Optical Dissipative Discrete Time Crystals
论文作者
论文摘要
时间晶体是周期性状态,表现出在时间非依赖性或定期强制量子多体系统中表现出自发对称性的破坏。定期驱动的物理系统中离散时间翻译对称性的自发修改可以创建离散的时间晶体(DTC)。 DTC构成了物质的状态,具有诸如时空刚性远程顺序和连贯性之类的属性状态,这些属性对于量子计算和量子信息处理本质上是理想的。尽管它们吸引人,但DTC的实验证明是稀缺的,因此其行为的许多重要方面仍未探索。在这里,我们报告了Kerr-Nonlinelear光学微腔内光子DTC的实验观察和理论研究。由两个独立激光器的同时自我注射锁定,将两个独立的激光器与两种空腔模式和一个耗散的孤子造成任意频率分离,这个室温全光平台可以实现观察到的新型状态,例如带有缺陷的DTC,并实现了长期以来的长期以来长期以来的现象,例如DTC相位互动和共同的互动和共同的相互作用。据我们所知,这是耗散DTC的第一个实验证明,也是两个连续的波激光器在Kerr腔中的不同模式的同时自我注射锁定。结合整体制造,它可以导致芯片尺度的DTC,为从复杂的实验室设置中解放时间晶体并将其推向现实世界应用铺平了道路。
Time crystals are periodic states exhibiting spontaneous symmetry breaking in either time-independent or periodically forced quantum many-body systems. Spontaneous modification of discrete time translation symmetry in a periodically driven physical system can create a discrete time crystal (DTC). DTCs constitute a state of matter with properties such as temporal rigid long-range order and coherence which are inherently desirable for quantum computing and quantum information processing. Despite their appeal, experimental demonstrations of DTCs are scarce and hence many significant aspects of their behavior remain unexplored. Here, we report the experimental observation and theoretical investigation of photonic DTCs in a Kerr-nonlinear optical microcavity. Empowered by the simultaneous self-injection locking of two independent lasers with arbitrarily large frequency separation to two cavity modes and a dissipative soliton, this room-temperature all-optical platform enables observing novel states like DTCs carrying defects, and realizing long-awaited phenomena such as DTC phase transitions and mutual interactions. To the best of our knowledge, this is the first experimental demonstration of a dissipative DTC, as well as the concurrent self-injection locking of two continuous-wave lasers to different modes of the same family in a Kerr cavity. Combined with monolithic fabrication, it can result in chip-scale DTCs, paving the way for liberating time crystals from sophisticated laboratory setups and propelling them toward real-world applications.