Tong Xin, He Zhe, Zhang Yide, Solomon Samuel, Lin Li, Song Qiyuan, Wang Lihong V
Caltech Optical Imaging Laboratory, Andrew and Peggy Cherng Department of Medical Engineering, Department of Electrical Engineering, California Institute of Technology, 1200 E. California Blvd., MC 138-78, Pasadena, CA 91125, USA.
Phys Rev Appl. 2023 Mar;19(3). doi: 10.1103/physrevapplied.19.034049. Epub 2023 Mar 15.
Quantum correlation between two parties serves as an important resource in the surging applications of quantum information. The Bell nonlocality and quantum steering have been proposed to describe non-classical correlations against local-hidden-variable and local-hidden-state theories, respectively. To characterize the two types of non-classical correlations, various nonlocality and steering inequalities have been established, and the amount of inequality violation serves as an important indicator for many entanglement-based tasks. Quantum state tomography has been employed for measuring quantum states, while the method requires intensive computation and does not directly verify either nonlocality or steering over the full domain independent of established theories. Here, we experimentally map the full-domain correlation with bipartite states for nonlocality and quantum steering in CHSH scenarios. The measurement of the maps automatically accounts for detection imperfections. Furthermore, we demonstrate the application of the correlation maps in the entanglement-based quantum key distribution protocol with arbitrary bipartite states. The correlation maps show direct measurements and simple interpretations that can answer fundamental questions about nonlocality and quantum steering as well as contribute to quantum information applications in a straightforward manner.
两方之间的量子关联是量子信息蓬勃发展的应用中的一种重要资源。贝尔非定域性和量子导引分别被提出用于描述相对于局域隐变量理论和局域隐态理论的非经典关联。为了刻画这两种非经典关联,已经建立了各种非定域性和导引不等式,并且不等式违背量是许多基于纠缠的任务的重要指标。量子态层析成像已被用于测量量子态,然而该方法需要大量计算,并且不能独立于已有的理论直接在全域验证非定域性或导引。在此,我们通过实验绘制了CHSH场景中用于非定域性和量子导引的两体态的全域关联图。这些图的测量自动考虑了探测不完善性。此外,我们展示了关联图在具有任意两体态的基于纠缠的量子密钥分发协议中的应用。关联图展示了直接测量和简单解释,既能回答关于非定域性和量子导引的基本问题,又能以直接的方式推动量子信息应用。