论文标题

通过重复的系统助焊剂相互作用增强了稳态连贯性

Enhanced steady-state coherence via repeated system-bath interactions

论文作者

Román-Ancheyta, Ricardo, Kolář, Michal, Guarnieri, Giacomo, Filip, Radim

论文摘要

系统浴相互作用的稳态相干性(SSC)的出现证明,量子效应可能不会出现而没有外部驱动。这样的SSC可以成为证明应用程序中量子优势的资源。如果目标系统反复与独立和非相关的浴元素相互作用,我们会预测SSC的产生。为了描述其行为,我们使用系统浴相互作用的碰撞模型方法,其中系统一次与一个浴元件(最初处于不连贯状态)相互作用,渐近地(在快速碰撞方案中)模仿宏观马科维亚浴缸,耦合到目标系统。因此,SSC定性似乎与使用连续的马尔可夫浴室相同。我们确认在旋转波近似(RWA)下存在复合系统浴力相互作用是使用碰撞模型中使用热资源生成SSC的必要条件。值得注意的是,我们表明,如果目标系统一次与多个浴室元素共同相互作用,那么SSC会大大增加。已经很少有与目标系统共同交互的浴元素足以在非零温度下以降低最终状态纯度的成本来提高SSC。从热力学的角度来看,我们的碰撞模型中的SSC生成不可避免地与达到稳态的非零功率输入(因此散发到浴室的热量)相比,尽管与依靠SSC非生成相互作用的案例相比,这种能量成本可以降低。

The appearance of steady-state coherence (SSC) from system-bath interaction proves that quantum effects can appear without an external drive. Such SSC could become a resource to demonstrate quantum advantage in the applications. We predict the generation of SSC if the target system repeatedly interacts with independent and non-correlated bath elements. To describe their behavior, we use the collision model approach of system-bath interaction, where the system interacts with one bath element (initially in an incoherent state) at a time, asymptotically (in the fast-collision regime) mimicking a macroscopic Markovian bath coupled to the target system. Therefore, the SSC qualitatively appears to be the same as if the continuous Markovian bath would be used. We confirm that the presence of composite system-bath interactions under the rotating-wave approximation (RWA) is the necessary condition for the generation of SSC using thermal resources in collision models. Remarkably, we show that SSC substantially increases if the target system interacts collectively with more than one bath element at a time. Already few bath elements collectively interacting with the target system are sufficient to increase SSC at non-zero temperatures at the cost of tolerable lowering the final state purity. From the thermodynamic perspective, the SSC generation in our collision models is inevitably linked to a non zero power input (and thus heat dissipated to the bath) necessary to reach the steady-state, although such energetic cost can be lower compared to cases relying on SSC non generating interactions.

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