首页|基于质心法的高分辨率高探测效率N光子纠缠N00N态超分辨量子成像

基于质心法的高分辨率高探测效率N光子纠缠N00N态超分辨量子成像

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基于N光子纠缠量子成像的分辨率优势,设计了一种通用的多光子纠缠N00N态的超分辨量子成像系统,理论上成像分辨率可实现(√N-1)倍的增加,成像系统的分辨率得到大幅提升.针对N00N态探测效率过低的问题,利用光学质心测量方法,保留所有探测情况,在不需要所有光子到达空间同一点的情况下,通过光子计数和适当的后处理,实现了任意数量光子下成像分辨率的提高.相较于N光子吸收方案,该方法的理论效率增加了DN-1(假设有D个像素).所提方案可以产生具有高保真度和高稳定性(数天内保持稳定)的N00N态,有利于拓展N00N态的应用范围.所设计的系统在超分辨量子成像领域中具有较好的应用价值.
Super-resolution Quantum Imaging of N-photon Entangled N00N State with High Resolution and High Detection Efficiency Based on Centroid Method
Objective As a breakthrough technology in recent years,super-resolution imaging has become an important research problem in computer vision and image processing and has wide practical applications in medical,biological,security,and other fields.However,classical imaging technology is limited by the diffraction resolution limit,and it is difficult to achieve resolution breakthroughs.Quantum entanglement can transcend diffraction resolution limits by sharpening spatial interference fringes based on quantum technology evolution.The entangled N00N state has been studied because it can exceed the standard quantum limit.The interference visibility of the three-photon N00N state is higher than the limit of classical spatial super-resolution,and the pattern of theN-photon entangled N00N state is N times finer than that of classical light.Thus,the N00N state can improve the resolution of the optical system by N times.However,the probability of all N photons arriving at the same location and the detection efficiency decreases exponentially with increasing N,making the advantages of the N00N state controversial.The optical centroid measurement(OCM)promotes the application of the N00N state in super-resolution imaging.This study further applies the advantages of N-photon entangled N00N state to super-resolution quantum imaging based on existing theories and technologies.This study further proposes a new quantum imaging system to improve the resolution of object imaging.Methods This study primarily adopts theoretical analysis and simulation methods.A simulation model based on the proposed quantum imaging system is created,and the resolution enhancement of our scheme is quantified by measuring the modulation transfer function(MTF).A photon source model is constructed to generate coherent photons that are irradiated onto the object and transmitted to the receiver.The centroid position of the photons is measured using the OCM method,and the point spread function(PSF)of the imaging system is calculated using the obtained simulation data.Finally,the MTF is obtained using the Fourier transform method.In addition to the theoretical analysis of the detection efficiency enhancement of N00N state by OCM,the advantages of OCM visibility are analyzed through simulation visibility.The data are obtained through model simulation,and the curve is fitted to the data point,following the visibility calculation and analysis using the fitted curve.Results and Discussions The model simulation of the proposed imaging system shows that the MTF curve decreases with the increase of spatial frequency.However,the entangled two-photon curve changes more gently than the spatially uncorrelated two-photon curve,indicating that the resolution of entangled two-photon imaging is better than that of uncorrelated two-photon imaging.Similarly,the presence of more entangled photons changes the curve at a slower pace.The resolution of(16±2)%is enhanced in the two-photon N00N entangled state,and the resolutions of 4 and 8 photons are(30±3)%,and(41±2)%,respectively(Fig.2 and Table 1).The results verify the feasibility of the OCM imaging scheme for N-photon entangled N00N state super-resolution imaging.Moreover,the resolution can be enhanced by increasing the number of photons.The visibilities obtained by OCM for classical light and N00N entangled light are compared.The visibility decreases significantly as the number of photons of classical light increases from 2 to 4.The visibilities of 2,3 and 4 photons are(45±5)%,(17±4)%,and(12±2)%,respectively,whereas the visibility obtained by OCM for N00N entangled light remains relatively constant.The obtained visibilities of 2,3,and 4 photons are(50±4)%,(44±2)%,and(42±4)%,respectively(Fig.3),achieving improved visibility.Conclusions The quantum imaging system scheme presented in this study improves the detection efficiency of N00N state by means of optical centroid measurement,and exploits the N-photon entanglement of N00N state to realize super-resolution imaging of objects.OCM does not require all photons to reach the same point in space as compared to the N-photon absorption scheme.The resolution of any number of photons can be improved by photon counting and proper post-processing,which significantly improves the detection efficiency of N00N entangled states.Moreover,the visibility of the OCM signal in N00N state is almost independent of the change in photon number N;therefore,the imaging system is suitable for higher photon numbers.The super-resolution quantum imaging system based on N-photon entanglement overcomes the problem in effectively detecting N-photon states,which improves quantum-enhanced measurement.Moreover,it is significant for Heisenberg finite phase detection and the development of super-resolution quantum imaging.Theoretically,the system can enhance √N-1 times of image resolution.The prepared N00N state has high fidelity and stability.Thus,it is expected to be more commonly applied in research and promote new progress in the field of super-resolution quantum imaging.

quantum opticsquantum imagingsuper-resolutionN00N statesoptical centroid measurement

张黄杰、陈晨远、郝然、占春连、金尚忠、张鹏举、庄新港、费丰

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中国计量大学光学与电子科技学院,浙江杭州 310018

中国电子科技集团有限公司第四十一研究所,山东青岛 266555

量子光学 量子成像 超分辨率 N00N态 光学质心测量

国防技术基础项目国家自然科学基金面上项目浙江省自然科学基金重点项目

JSJL2020210A00161975182LZ23F050001

2024

中国激光
中国光学学会 中科院上海光机所

中国激光

CSTPCD北大核心
影响因子:2.204
ISSN:0258-7025
年,卷(期):2024.51(6)