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用离散时间晶体有序探测无序偶极自旋系统的量子热化。

Probing Quantum Thermalization of a Disordered Dipolar Spin Ensemble with Discrete Time-Crystalline Order.

机构信息

Department of Physics, Harvard University, Cambridge, Massachusetts 02138, USA.

School of Engineering and Applied Sciences, Harvard University, Cambridge, Massachusetts 02138, USA.

出版信息

Phys Rev Lett. 2019 Feb 1;122(4):043603. doi: 10.1103/PhysRevLett.122.043603.

Abstract

We investigate thermalization dynamics of a driven dipolar many-body quantum system through the stability of discrete time crystalline order. Using periodic driving of electronic spin impurities in diamond, we realize different types of interactions between spins and demonstrate experimentally that the interplay of disorder, driving, and interactions leads to several qualitatively distinct regimes of thermalization. For short driving periods, the observed dynamics are well described by an effective Hamiltonian which sensitively depends on interaction details. For long driving periods, the system becomes susceptible to energy exchange with the driving field and eventually enters a universal thermalizing regime, where the dynamics can be described by interaction-induced dephasing of individual spins. Our analysis reveals important differences between thermalization of long-range Ising and other dipolar spin models.

摘要

我们通过离散时间晶态序的稳定性来研究驱动的偶极多体量子系统的热化动力学。通过在钻石中周期性地驱动电子自旋杂质,我们实现了自旋之间不同类型的相互作用,并实验证明了无序、驱动和相互作用的相互作用导致了热化的几个不同的定性区域。对于短的驱动周期,观察到的动力学可以很好地用一个有效的哈密顿量来描述,这个哈密顿量对相互作用细节非常敏感。对于长的驱动周期,系统容易与驱动场进行能量交换,最终进入一个普遍的热化区域,在这个区域中,动力学可以用单个自旋的相互作用诱导去相位来描述。我们的分析揭示了长程 Ising 和其他偶极自旋模型的热化之间的重要区别。

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