论文标题

离散的时间晶体序列在旋转式机电和开放空腔QED系统中的稳定性

Stability of the discrete time-crystalline order in spin-optomechanical and open cavity QED systems

论文作者

Hu, Zhengda, Gao, Xingyu, Li, Tongcang

论文摘要

在过去的几年中,在几个不同的量子系统中已经在实验中证明了离散的时间晶体(DTC)。自旋耦合和空腔损失已显示出在以平衡状态以开放的多体系统中DTC顺序实现DTC顺序的关键作用。最近,已经提出,可以在热力学极限和深量子方案中以几个Qubits的开放式DTC和瞬态DTC存在。在这项工作中,我们考虑了自旋阻尼和自旋去序对自旋机电和开放式空腔系统中DTC顺序的影响,在这些腔体和开放式空腔系统中,可以全力以赴。在热力学极限中,表明脱缘物的存在可以破坏系统的连贯性,并最终将系统带到其微不足道的稳态。在弱阻尼状态下显示了永恒的DTC,可以通过增加全部自旋耦合或自旋阻尼来破坏。相比之下,全体耦合是对中等阻尼状态下DTC的建设性。我们还专注于一个模型,该模型可以通过悬浮的六角硼(HBN)膜在实验中实现,并在微波驱动器和浮球磁场下具有一些自旋颜色中心。瞬态DTC行为的特征在弱和中等耗散方案中都证明了,而无需旋转。还讨论了相关的实验参数,以实现这种HBN光学机械系统中的瞬态DTC顺序。

Discrete time crystals (DTC) have been demonstrated experimentally in several different quantum systems in the past few years. Spin couplings and cavity losses have been shown to play crucial roles for realizing DTC order in open many-body systems out of equilibrium. Recently, it has been proposed that eternal and transient DTC can be present with an open Floquet setup in the thermodynamic limit and in the deep quantum regime with few qubits, respectively. In this work, we consider the effects of spin damping and spin dephasing on the DTC order in spin-optomechanical and open cavity systems in which the spins can be all-to-all coupled. In the thermodynamic limit, it is shown that the existence of dephasing can destroy the coherence of the system and finally lead the system to its trivial steady state. Without dephasing, eternal DTC is displayed in the weak damping regime, which may be destroyed by increasing the all-to-all spin coupling or the spin damping. By contrast, the all-to-all coupling is constructive to the DTC in the moderate damping regime. We also focus on a model which can be experimentally realized by a suspended hexagonal boron nitride (hBN) membrane with a few spin color centers under microwave drive and Floquet magnetic field. Signatures of transient DTC behavior are demonstrated in both weak and moderate dissipation regimes without spin dephasing. Relevant experimental parameters are also discussed for realizing transient DTC order in such an hBN optomechanical system.

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