量子遥感中具有路径同一性的量子频率梳

IF 11.6 1区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY Physical Review X Pub Date : 2024-12-06 DOI:10.1103/physrevx.14.041058
D. A. R. Dalvit, T. J. Volkoff, Y.-S. Choi, A. K. Azad, H.-T. Chen, P. W. Milonni
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引用次数: 0

摘要

量子传感通过利用光或物质的量子态作为传感探针,有望彻底改变传感应用。光子是用于遥感的量子探测器的明确选择,因为它们可以到达遥远的目标并与之相互作用。现有方案主要基于量子照明框架,该框架要求量子存储器存储最初纠缠对的单个光子,直到其孪生对从目标反射并返回进行最终相关测量。现有的演示仅限于桌面实验,扩大传感范围面临各种障碍,包括长时间的量子存储和长距离传输量子信号时的光子损失和噪声。我们提出了一种新的量子传感框架,该框架使用具有路径同一性的量子频率梳来解决这些挑战,用于遥感签名(“qCOMBPASS”)。一种关键量子现象和两种量子资源的结合——即通过路径同一性的量子诱导相干性、量子频率梳和双模压缩光——允许在不需要量子存储器的情况下进行量子遥感。所提出的方案类似于基于纠缠频率梳对的量子雷达,它使用路径同一性来检测、测距或感知远程目标,方法是测量从未到达目标的频率梳对中的一个梳的脉冲,但该脉冲包含通过量子诱导相干性通过路径同一性从到达目标但未被检测到的频率梳对中的另一个梳的“远程传输”的目标信息。我们发展了qCOMBPASS的基本理论,分析了qCOMBPASS收发器的特性,并介绍了qCOMBPASS方程——经典遥感中著名的激光雷达方程的量子模拟。我们还描述了一个用双模压缩量子梳来证明这一概念的实验方案。qCOMBPASS可以强烈影响远程量子传感、成像、计量和通信等领域的各种应用。这些应用包括低反射率物体的检测和测距,远端目标的小位移测量精度超过标准量子极限(SQL),防区外高光谱量子成像,从空间进行低检测概率的离散监视(检测而不被检测到),超长基线干涉测量,量子多普勒传感,量子时钟同步和分布式量子传感器网络。2024年由美国物理学会出版
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Quantum Frequency Combs with Path Identity for Quantum Remote Sensing
Quantum sensing promises to revolutionize sensing applications by employing quantum states of light or matter as sensing probes. Photons are the clear choice as quantum probes for remote sensing because they can travel to and interact with a distant target. Existing schemes are mainly based on the quantum illumination framework, which requires quantum memory to store a single photon of an initially entangled pair until its twin reflects off a target and returns for final correlation measurements. Existing demonstrations are limited to tabletop experiments, and expanding the sensing range faces various roadblocks, including long-time quantum storage and photon loss and noise when transmitting quantum signals over long distances. We propose a novel quantum sensing framework that addresses these challenges using quantum frequency combs with path identity for remote sensing of signatures (“qCOMBPASS”). The combination of one key quantum phenomenon and two quantum resources—namely, quantum-induced coherence by path identity, quantum frequency combs, and two-mode squeezed light—allows for quantum remote sensing without requiring quantum memory. The proposed scheme is akin to a quantum radar based on entangled frequency-comb pairs that uses path identity to detect, range, or sense a remote target of interest by measuring pulses of one comb in the pair that never traveled to the target but that contains target information “teleported” by quantum-induced coherence by path identity from the other comb in the pair that traveled to the target but is not detected. We develop the basic qCOMBPASS theory, analyze the properties of the qCOMBPASS transceiver, and introduce the qCOMBPASS equation—a quantum analog of the well-known LIDAR equation in classical remote sensing. We also describe an experimental scheme to demonstrate the concept using two-mode squeezed quantum combs. qCOMBPASS can strongly impact various applications in remote quantum sensing, imaging, metrology, and communications. These applications include detection and ranging of low-reflectivity objects, measurement of small displacements of a remote target with precision beyond the standard quantum limit (SQL), standoff hyperspectral quantum imaging, discreet surveillance from space with low detection probability (detect without being detected), very-long-baseline interferometry, quantum Doppler sensing, quantum clock synchronization, and networks of distributed quantum sensors. Published by the American Physical Society 2024
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来源期刊
Physical Review X
Physical Review X PHYSICS, MULTIDISCIPLINARY-
CiteScore
24.60
自引率
1.60%
发文量
197
审稿时长
3 months
期刊介绍: Physical Review X (PRX) stands as an exclusively online, fully open-access journal, emphasizing innovation, quality, and enduring impact in the scientific content it disseminates. Devoted to showcasing a curated selection of papers from pure, applied, and interdisciplinary physics, PRX aims to feature work with the potential to shape current and future research while leaving a lasting and profound impact in their respective fields. Encompassing the entire spectrum of physics subject areas, PRX places a special focus on groundbreaking interdisciplinary research with broad-reaching influence.
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