量子纠缠
量子层析成像
物理
角动量
量子力学
光子
量子传感器
量子态
量子信息科学
量子计量学
统计物理学
量子技术
量子光学
量子
光子纠缠
量子不和谐
量子网络
开放量子系统
作者
Yi Li,Shuang-Yin Huang,Min Wang,Chenghou Tu,Xi‐Lin Wang,Yongnan Li,Hui‐Tian Wang
标识
DOI:10.1103/physrevlett.130.050805
摘要
High-dimensional (HD) entanglement enables an encoding of more bits than in the two-dimensional case and promises to increase communication capacity over quantum channels and to improve robustness to noise. In practice, however, one of the central challenges is to devise efficient methods to quantify the HD entanglement explicitly. Full quantum state tomography is a standard technology to obtain all the information about the quantum state, but it becomes impractical because the required measurements increase exponentially with the dimension in HD systems. Hence, it is highly anticipated that a new method will be found for characterizing the HD entanglement with as few measurements as possible and without introducing unwarranted assumptions. Here, we present and demonstrate a scan-free tomography method independent of dimension, which only requires two measurements for the characterization of two-photon HD orbital angular momentum (OAM) entanglement. Taking Laguerre-Gaussian modes of photons as an example, the density matrices of OAM entangled states are experimentally reconstructed with very high fidelity. Our method is also generalized to the mixed HD OAM entanglement. Our results provide realistic approaches for quantifying more complex OAM entanglement in many scientific and engineering fields such as multiphoton HD quantum systems and quantum process tomography.
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