论文标题
量子在玩具模型中
Quantum scrambling in a toy model of photodetectors
论文作者
论文摘要
量子测量是一个涉及量子系统与包含许多自由度的宏观测量设备之间相互作用的过程。光电探测器是这样的设备,许多电子与传入的量子光子相互作用。因此,传入的光子将在光电探测器中扩散并炒作,即,在相互作用过程中,初始传入局部光子的操作员将增长并高度非局部性。详细研究这一争夺过程对于理解量子系统与测量设备之间的相互作用很有用。在本文中,我们通过数值模拟超级相关器(OTOC)的演变来研究在三种不同的物理场景中有效的光电探测器玩具模型中的量子争夺过程。特别是,通过级别的间距统计数据探讨了有效模型的整合性,并使用OTOC仔细研究了空间/临时分布的疾病对系统演化的影响。研究这些详细的动力学过程为光构探测器的量子模拟和操纵铺平了道路,这将提供有关理解波功能崩溃过程的见解。
Quantum measurement is a process that involves the interaction between a quantum system and a macroscopic measurement apparatus containing many degrees of freedom. The photodetector is such an apparatus with many electrons interacting with the incoming quantum photon. Therefore the incoming photon will spread and get scrambled in the photodetector, that is, the operator of the initial incoming local photons will grow and becomes highly non-local through the interaction process. Investigating this scrambling process in detail is useful for understanding the interaction between the quantum system and the measurement apparatus. In this paper, we study the quantum scrambling process in an effective toy model of photodetectors in three different physical scenarios, by numerically simulating the evolution of the out-of-time correlators (OTOC). In particular, the integrability of the effective model is explored through level spacing statistics, and the effect of the spatially/temporarily distributed disorders on the system evolution is carefully investigated using the OTOC. Looking into these detailed dynamical processes paves the way to the quantum simulation and manipulation of photondetector, which would provide insights into understanding the wave-function collapse processes.