量子纠缠
光子
物理
量子计量学
光子纠缠
量子位元
量子传感器
光子学
自旋(空气动力学)
量子技术
纳米光子学
量子光学
碳化硅
旋转
量子力学
量子网络
量子
光电子学
凝聚态物理
材料科学
开放量子系统
冶金
热力学
作者
Ren-Zhou Fang,Xiaoyi Lai,Tao Li,Ren-Zhu Su,Bo-Wei Lu,Chao-Wei Yang,Runze Liu,Yu-Kun Qiao,Cheng Li,Zhi-Gang He,Jia Huang,Hao Li,Lixing You,Yong-Heng Huo,Xiao‐Hui Bao,Jian-Wei Pan
标识
DOI:10.1103/physrevlett.132.160801
摘要
A solid-state approach for quantum networks is advantageous, as it allows the integration of nanophotonics to enhance the photon emission and the utilization of weakly coupled nuclear spins for long-lived storage. Silicon carbide, specifically point defects within it, shows great promise in this regard due to the easy of availability and well-established nanofabrication techniques. Despite of remarkable progresses made, achieving spin-photon entanglement remains a crucial aspect to be realized. In this Letter, we experimentally generate entanglement between a silicon vacancy defect in silicon carbide and a scattered single photon in the zero-phonon line. The spin state is measured by detecting photons scattered in the phonon sideband. The photonic qubit is encoded in the time-bin degree of freedom and measured using an unbalanced Mach-Zehnder interferometer. Photonic correlations not only reveal the quality of the entanglement but also verify the deterministic nature of the entanglement creation process. By harnessing two pairs of such spin-photon entanglement, it becomes straightforward to entangle remote quantum nodes at long distance.
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