Quantum Correlation Enhanced Optical Imaging

被引:3
作者
Vernekar, Siddhant [1 ]
Xavier, Jolly [1 ,2 ]
机构
[1] Indian Inst Technol Delhi, SeNSE, New Delhi 110016, India
[2] Univ Exeter, Dept Phys & Astron, Exeter EX4 4QD, England
关键词
quantum photonics; quantum imaging; quantum correlations; quantum key distribution; quantum sensing; KEY DISTRIBUTION; CRYPTOGRAPHY; NOISE; INTERFERENCE; SIMULATIONS; INFORMATION; MICROSCOPY; PHOTONS;
D O I
10.3390/qubs8030019
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
Quantum correlations, especially time correlations, are crucial in ghost imaging for significantly reducing the background noise on the one hand while increasing the imaging resolution. Moreover, the time correlations serve as a critical reference, distinguishing between signal and noise, which in turn enable clear visualization of biological samples. Quantum imaging also addresses the challenge involved in imaging delicate biological structures with minimal photon exposure and sample damage. Here, we explore the recent progress in quantum correlation-based imaging, notably its impact on secure imaging and remote sensing protocols as well as on biological imaging. We also exploit the quantum characteristics of heralded single-photon sources (HSPS) combined with decoy state methods for secure imaging. This method uses Quantum Key Distribution (QKD) principles to reduce measurement uncertainties and protect data integrity. It is highly effective in low-photon number regimes for producing high-quality, noise-reduced images. The versatility of decoy state methods with WCSs (WCS) is also discussed, highlighting their suitability for scenarios requiring higher photon numbers. We emphasize the dual advantages of these techniques: improving image quality through noise reduction and enhancing data security with quantum encryption, suggesting significant potential for quantum imaging in various applications, from delicate biological imaging to secure quantum imaging and communication.
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页数:42
相关论文
共 160 条
[1]   Role of entanglement in two-photon imaging [J].
Abouraddy, AF ;
Saleh, BEA ;
Sergienko, AV ;
Teich, MC .
PHYSICAL REVIEW LETTERS, 2001, 87 (12)
[2]   Comment on "Quantum interferometric optical lithography: Exploiting entanglement to beat the diffraction limit" [J].
Agarwal, GS ;
Boyd, RW ;
Nagasako, EM ;
Bentley, SJ .
PHYSICAL REVIEW LETTERS, 2001, 86 (07) :1389-1389
[3]  
andor.oxinst, Sensitivity and Noise of Ccd, Emccd, and Scmos Sensors
[4]  
[Anonymous], 1927, NATURE, V119, P125
[5]   Photon-sparse microscopy: visible light imaging using infrared illumination [J].
Aspden, Reuben S. ;
Gemmell, Nathan R. ;
Morris, Peter A. ;
Tasca, Daniel S. ;
Mertens, Lena ;
Tanner, Michael G. ;
Kirkwood, Robert A. ;
Ruggeri, Alessandro ;
Tosi, Alberto ;
Boyd, Robert W. ;
Buller, Gerald S. ;
Hadfield, Robert H. ;
Padgett, Miles J. .
OPTICA, 2015, 2 (12) :1049-1052
[6]   EPR-based ghost imaging using a single-photon-sensitive camera [J].
Aspden, Reuben S. ;
Tasca, Daniel S. ;
Boyd, Robert W. ;
Padgett, Miles J. .
NEW JOURNAL OF PHYSICS, 2013, 15
[7]   EXPERIMENTAL TEST OF BELL INEQUALITIES USING TIME-VARYING ANALYZERS [J].
ASPECT, A ;
DALIBARD, J ;
ROGER, G .
PHYSICAL REVIEW LETTERS, 1982, 49 (25) :1804-1807
[8]  
Aspuru-Guzik A, 2012, NAT PHYS, V8, P285, DOI [10.1038/NPHYS2253, 10.1038/nphys2253]
[9]  
Atchison David A., 2023, Optics of the human eye
[10]   Squeezed vacuum states of light for gravitational wave detectors [J].
Barsotti, Lisa ;
Harms, Jan ;
Schnabel, Roman .
REPORTS ON PROGRESS IN PHYSICS, 2019, 82 (01)