Djordjevic Ivan B
Department of Electrical and Computer Engineering, University of Arizona, 1230 E. Speedway Blvd., Tucson, AZ 85721, USA.
Entropy (Basel). 2022 May 26;24(6):756. doi: 10.3390/e24060756.
With the help of entanglement, we can build quantum sensors with sensitivity better than that of classical sensors. In this paper we propose an entanglement assisted (EA) joint monostatic-bistatic quantum radar scheme, which significantly outperforms corresponding conventional radars. The proposed joint monostatic-bistatic quantum radar is composed of two radars, one having both wideband entangled source and EA detector, and the second one with only an EA detector. The optical phase conjugation (OPC) is applied on the transmitter side, while classical coherent detection schemes are applied in both receivers. The joint monostatic-bistatic integrated EA transmitter is proposed suitable for implementation in LiNbO technology. The detection probability of the proposed EA joint target detection scheme outperforms significantly corresponding classical, coherent states-based quantum detection, and EA monostatic detection schemes. The proposed EA joint target detection scheme is evaluated by modelling the direct radar return and forward scattering channels as both lossy and noisy Bosonic channels, and assuming that the distribution of entanglement over idler channels is not perfect.
借助纠缠,我们能够构建出灵敏度优于传统传感器的量子传感器。在本文中,我们提出了一种纠缠辅助(EA)联合单基地 - 双基地量子雷达方案,该方案显著优于相应的传统雷达。所提出的联合单基地 - 双基地量子雷达由两部雷达组成,一部同时具备宽带纠缠源和EA探测器,另一部仅配备一个EA探测器。在发射端应用光学相位共轭(OPC),而在两个接收端均应用经典相干检测方案。提出了适用于在铌酸锂技术中实现的联合单基地 - 双基地集成EA发射机。所提出的EA联合目标检测方案的检测概率显著优于相应的基于经典相干态的量子检测以及EA单基地检测方案。通过将直接雷达回波和前向散射通道建模为有损耗且有噪声的玻色子通道,并假设闲置通道上的纠缠分布并不完美,对所提出的EA联合目标检测方案进行了评估。