CAS Key Laboratory of Quantum Information, University of Science and Technology of China, Hefei, Anhui 230026, China and CAS Center For Excellence in Quantum Information and Quantum Physics, University of Science and Technology of China, Hefei, Anhui 230026, China.
Phys Rev Lett. 2019 Mar 8;122(9):090402. doi: 10.1103/PhysRevLett.122.090402.
Bell state measurements, of which the eigenvectors are in an entangled form, are crucial resources in the construction of quantum networks. Therefore, device-independent certification of a Bell state measurement has significance in the quantum information process because it satisfies the exact demand on security. In this study, we implement a proof-of-concept experiment to certify a Bell state measurement device independently in an entanglement swapping process, namely, self-testing. Instead of preparing a tensor product of two singlets with four photons, multiplex encoding in polarization and spatial modes is utilized to produce two pairs of entangled qubits. As a result, we implement a full Bell state measurement and achieve a high degree of Bell violation on the remaining two qubits, which are required for nontrivial self-testing of a Bell state measurement. Furthermore, our results combine the correlations before and after the swapping; thus, the quality of the performed Bell state measurement can be precisely inferred.
贝尔态测量,其本征向量处于纠缠形式,是量子网络构建的关键资源。因此,在量子信息处理中,对贝尔态测量进行设备无关的认证具有重要意义,因为它满足了安全性的确切要求。在这项研究中,我们实现了一个贝尔态测量设备的概念验证实验,即纠缠交换过程中的自测试。我们没有使用四个光子的两个单粒子张量乘积,而是利用偏振和空间模式的复用编码来产生两对纠缠量子位。结果,我们实现了完整的贝尔态测量,并在进行贝尔态测量的非平凡自测试所需的剩余两个量子位上实现了高的贝尔违反度。此外,我们的结果结合了交换前后的相关性;因此,可以精确推断所执行的贝尔态测量的质量。