论文标题
驱动耗散二聚体$ s = 1/2 $链的动力特性
Dynamical properties of a driven dissipative dimerized $S = 1/2$ chain
论文作者
论文摘要
我们考虑了与激光器的电场相连的大量量子自旋系统的动力学特性,该系统驱动了调节磁相互作用的特定声子模式的共振激发。我们通过与Bath Operators开发lindblad形式主义的形式,从而推断出了晶格和旋转扇区的时间进化的量子主方程,从而提供了对其各自的声子介导的阻尼项的明确描述。我们研究了通过连续驾驶,划定驱动频率,阻尼和旋转频率偶联的旋转系统的非平衡稳态(NESS),以建立物理意义的NESS及其相关的非琐事。为了关注通用弱自旋偶联的状态,我们通过其频率和波形载体含量来表征NESS,探索它们的短暂和放松行为,并讨论所采用的浴缸类型的能量流,系统温度以及关键作用。我们的研究为目前设计的实验定量建模奠定了基础,该实验旨在控制量子磁性材料中的相干多体旋转状态。
We consider the dynamical properties of a gapped quantum spin system coupled to the electric field of a laser, which drives the resonant excitation of specific phonon modes that modulate the magnetic interactions. We deduce the quantum master equations governing the time-evolution of both the lattice and spin sectors, by developing a Lindblad formalism with bath operators providing an explicit description of their respective phonon-mediated damping terms. We investigate the nonequilibrium steady states (NESS) of the spin system established by a continuous driving, delineating parameter regimes in driving frequency, damping, and spin-phonon coupling for the establishment of physically meaningful NESS and their related non-trivial properties. Focusing on the regime of generic weak spin-phonon coupling, we characterize the NESS by their frequency and wave-vector content, explore their transient and relaxation behavior, and discuss the energy flow, the system temperature, and the critical role of the type of bath adopted. Our study lays a foundation for the quantitative modelling of experiments currently being designed to control coherent many-body spin states in quantum magnetic materials.