Infrared and Laser Engineering, Volume. 51, Issue 1, 20211102(2022)

Overview of quantum LiDAR (Invited)

Zijing Zhang, Jiaheng Xie, Mingwei Huang, and [in Chinese]*
Author Affiliations
  • School of Physics, Harbin Institute of Technology, Harbin 150001, China
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    References(39)

    [1] Malik M, Magaña-Loaiza O S, Boyd R W. Quantum-secured imaging[J]. Appl Phys Lett, 101, 241103(2012).

    [2] Giovannetti V, Lloyd S, Maccone L. Quantum cryptographic ranging[J]. Journal of Optics B, 4, S413(2002).

    [3] [3] Malik M, Magana O, Boyd R W. Secure quantum LIDAR[C]Frontiers in Optics Optical Society of America, 2012: FM3 C. 3.

    [4] [4] Wang X, Zhu B. A quantum target detection using polarized photons[C]Photonics Asia, International Society f Optics Photonics, 2012, 855405: 19.

    [5] [5] Shi D S. Research on optical quantum radar technology based on wavelength, time quantum rom pulse sequence [D]. Shanghai: University of Chinese Academy of Sciences (Shanghai Institute of Technical Physics, Chinese Academy of Sciences) , 2020. (in Chinese)

    [6] [6] Klyshko D N, Sviridov Y. Photons Nonlinear Optics[M]. London: Routledge, 2018.

    [7] Pittman T B, Shih Y H, Strekalov D V, et al. Optical imaging by means of two-photon quantum entanglement[J]. Physical Review A, 52, R3429(1995).

    [8] Bennink R S, Bentley S J, Boyd R W. "Two-photon" coincidence imaging with a classical source[J]. Physical Review Letters, 89, 113601(2002).

    [9] Shapiro J H. Computational ghost imaging[J]. Physical Review A, 78, 061802(2008).

    [10] [10] Hardy N D, Shapiro J H. Ghost imaging in reflection: Resolution, contrast, signaltonoise ratio[C]International Society f Optics Photonics, 2010, 7815: 78150 L.

    [11] [11] Katkovnik V, Astola J. Computational ghost imaging: Advanced compressive sensing (CS) technique[C]International Society f Optics Photonics, 2012, 8413: 84130 N.

    [12] Phillips D B, He R, Chen Q, et al. Non-diffractive computational ghost imaging[J]. Optics Express, 24, 14172-14182(2016).

    [13] Cheng J, Han S. Incoherent coincidence imaging and its applicability in X-ray diffraction[J]. Physical Review Letters, 92, 093903(2004).

    [14] Zhang D, Zhai Y H, Wu L A, et al. Correlated two-photon imaging with true thermal light[J]. Optics Letters, 30, 2354-2356(2005).

    [15] Cheng J. Ghost imaging through turbulent atmosphere[J]. Optics Express, 17, 7916-7921(2009).

    [16] Liu X F, Chen X H, Yao X R, et al. Lensless ghost imaging with sunlight[J]. Optics Letters, 39, 2314-2317(2014).

    [17] Cai Y J. Research progress of correlation imaging and its application[J]. Journal of Sichuan Normal University, 41, 711-728(2018).

    [18] Wu Z W, Qiu X D, Chen L X. Research status and prospect of correlation imaging technology[J]. Laser and Optoelectronics Progress, 57, 9-25(2020).

    [19] Zhao S M, Zhao L, Guo H, et al. Research on principle and Progress of ghost imaging[J]. Journal of Nanjing University of Posts and Telecommunications, 41, 65-77(2021).

    [20] Lloyd S. Enhanced sensitivity of photodetection via quantum illumination[J]. Science, 321, 1463-1465(2008).

    [21] Tan S H, Erkmen B I, Giovannetti V, et al. Quantum illumination with Gaussian states[J]. Physical Review Letters, 101, 253601(2008).

    [22] Lopaeva E D, Berchera I R, Degiovanni I P, et al. Experimental realization of quantum illumination[J]. Physical Review Letters, 110, 153603(2013).

    [23] Xu S L, Hu Y H, Zhao N X, et al. Quantum illumination target detection based on M&M' state[J]. Acta Photonica Sinica, 45, 0627001(2016).

    [24] Sanz M, Las Heras U, García-Ripoll J J, et al. Quantum estimation methods for quantum illumination[J]. Physical Review Letters, 118, 070803(2017).

    [25] Gregory T, Moreau P A, Toninelli E, et al. Imaging through noise with quantum illumination[J]. Science Advances, 6, 2652(2020).

    [26] Tao Z W, Ren Y C, Ai Z Z, et al. Quantum illumination radar based on entangled coherent states[J]. Acta Physica Sinica, 70, 63-70(2021).

    [27] Pezzé L, Smerzi A. Mach-Zehnder interferometry at the Heisenberg limit with coherent and squeezed-vacuum light[J]. Physical Review Letters, 100, 073601(2008).

    [28] Giovannetti V, Lloyd S, Maccone L. Quantum metrology[J]. Physical Review Letters, 96, 010401(2006).

    [29] Anisimov P M, Raterman G M, Chiruvelli A, et al. Quantum metrology with two-mode squeezed vacuum: parity detection beats the Heisenberg limit[J]. Physical Review Letters, 104, 103602(2010).

    [30] Zhang J D, Zhang Z J, Zhao Y, et al. Ultra-sensitive interferometric quantum lidar with Compressed Vacuum Injection[J]. Infrared and Laser Engineering, 46, 0730002(2017).

    [31] Schäfermeier C, Ježek M, Madsen L S, et al. Deterministic phase measurements exhibiting super-sensitivity and super-resolution[J]. Optica, 5, 60-64(2018).

    [32] Wang S, Wang Y, Zhai L, et al. Two-mode quantum inter-ferometry with a single-mode Fock state and parity detection[J]. Journal of the Optical Society of America B, 35, 1046-1053(2018).

    [33] Gao L, Zhang X L, Ma J T, et al. Quantum enhanced Doppler lidar based on integrated quantum compression light source[J]. Infrared and Laser Engineering, 50, 20210031(2021).

    [34] Dutton Z, Shapiro J H, Guha S. LADAR resolution improvement using receivers enhanced with squeezed-vacuum injection and phase-sensitive amplification[J]. Journal of the Optical Society of America B, 27, A63-A72(2010).

    [35] [35] Wasilousky P A, Smith K H, Glasser R, et al. Quantum enhancement of a coherent ladar receiver using phasesensitive amplification[C]SPIE, 2011, 8163: 816305.

    [36] [36] Dailey J M, Agarwal A, Toliver P, et al. Enhanced photonpair detection using phasesensitive pre amplification[C]Conference on Lasers ElectroOptics IEEE, 2015: 12.

    [37] Shahverdi A, Sua Y M, Tumeh L, et al. Quantum parametric mode sorting: Beating the time-frequency filtering[J]. Scientific Reports, 7, 1-12(2017).

    [38] Rehain P, Sua Y M, Zhu S, et al. Noise-tolerant single photon sensitive three-dimensional imager[J]. Nature Communications, 11, 1-7(2020).

    [39] [39] Sua Y M, Zhu S, Rehain P, et al. Quantum 3 D imaging through multiscattering media of 10 optical depth[C]Ocean Sensing Moniting XII. International Society f Optics Photonics, 2020, 11420: 1142009.

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    Zijing Zhang, Jiaheng Xie, Mingwei Huang, [in Chinese]. Overview of quantum LiDAR (Invited)[J]. Infrared and Laser Engineering, 2022, 51(1): 20211102

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    Paper Information

    Category: Lasers & Laser optics

    Received: Dec. 24, 2021

    Accepted: --

    Published Online: Mar. 8, 2022

    The Author Email: (zhaoyuan@hit.edu.cn)

    DOI:10.3788/IRLA20211102

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