Sheng Yu-Bo, Zhou Lan
Institute of Signal Processing Transmission, Nanjing University of Posts and Telecommunications, Nanjing, 210003, China.
Key Lab of Broadband Wireless Communication and Sensor Network Technology, Nanjing University of Posts and Telecommunications, Ministry of Education, Nanjing, 210003, China.
Sci Rep. 2015 Aug 26;5:13453. doi: 10.1038/srep13453.
The Bell state plays a significant role in the fundamental tests of quantum mechanics, such as the nonlocality of the quantum world. The Bell-state analysis is of vice importance in quantum communication. Existing Bell-state analysis protocols usually focus on the Bell-state encoding in the physical qubit directly. In this paper, we will describe an alternative approach to realize the near complete logic Bell-state analysis for the polarized concatenated Greenberger-Horne-Zeilinger (C-GHZ) state with two logic qubits. We show that the logic Bell-state can be distinguished in two steps with the help of the parity-check measurement (PCM) constructed by the cross-Kerr nonlinearity. This approach can be also used to distinguish arbitrary C-GHZ state with N logic qubits. As both the recent theoretical and experiment work showed that the C-GHZ state has its robust feature in practical noisy environment, this protocol may be useful in future long-distance quantum communication based on the logic-qubit entanglement.
贝尔态在量子力学的基础测试中起着重要作用,比如量子世界的非定域性。贝尔态分析在量子通信中至关重要。现有的贝尔态分析协议通常直接专注于物理量子比特中的贝尔态编码。在本文中,我们将描述一种用于实现对具有两个逻辑量子比特的极化级联格林伯格 - 霍恩 - 泽林格(C - GHZ)态进行近乎完全逻辑贝尔态分析的替代方法。我们表明,借助由交叉克尔非线性构建的奇偶校验测量(PCM),逻辑贝尔态可以分两步进行区分。该方法还可用于区分具有N个逻辑量子比特的任意C - GHZ态。由于近期的理论和实验工作均表明C - GHZ态在实际噪声环境中具有稳健特性,此协议可能在未来基于逻辑量子比特纠缠的长距离量子通信中有用。