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光量子态的空域调控(特邀)

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从单光子的线性空域调控出发,依次阐述单光子空域编码与转换、双光子纠缠态的制备与测量、多光子的高维空域纠缠态的制备及其在量子信息中的应用。主要围绕多自由度操控和高维量子信息转换,从制备、编码、测量和应用等方面概述空域光量子态的研究进展。同时探讨了一些关键问题的可能解决方案。
Spatial Control of Photonic Quantum States(Invited)
Significance Photons have several important degrees-of-freedom available for control belonging to the spatial domain,such as the path and orbital angular momentum(OAM)degrees-of-freedom.These available multiple spatial degrees-of-freedom and the high dimensionality of each degree-of-freedom provide for us diverse spatial methods,which can achieve spatial control of photonic quantum states in multiple degrees-of-freedom,high dimensionality,and multi-photons.Specifically,the preparation of spatially entangled photon states and their applications in optical quantum information have attracted extensive attention.Both path and OAM degrees-of-freedom can theoretically construct infinite-dimensional Hilbert spaces.Therefore,path and OAM degrees-of-freedom have inherent advantages in realizing the field of high-dimensional coding,which has attracted more extensive attention from researchers.The high-dimensional coding and high-dimensional entanglement of the path and OAM degrees-of-freedom themselves continue to break records.The multi-degree-of-freedom entangled photonic modulation schemes in which two or more degrees-of-freedom are jointly involved have likewise made progress.It is important to summarize the existing research on spatial control of photonic quantum state to promote the future development of the field.Progress The encoding of quantum information in single photons has evolved from a single degree-of-freedom to multiple degrees-of-freedom encoded together.On-demand conversion of quantum information among different degree-of-freedom through linear optical elements and such active modulation has built a series of quantum optical platforms such as weak measurements and quantum walks.Two-photon entangled states also emerge from the two-dimensional space of a single degree-of-freedom and are realized in multi-degree-of-freedom and high-dimensional systems.For two-photon spatial-domain entanglement,the original polarization-entangled photons are converted into OAM-entangled photons by SLM.Different polarizations can be loaded with different OAMs by a Sagnac interferometer,and two-photon entanglement of two photons with different OAMs has been reported.Subsequent work increases the OAM quantum number of entangled photons to 10010.In addition to the above preparation of OAM entangled photons using entanglement conversion,two-photon entanglement in Hilbert space higher than 100 dimensions has been realized by preparing a high-dimensional OAM entangled source through spontaneous parametric down-conversion and further combining it with the modulation of the radial modes of photons.At the same time,measurements of high-dimensional entangled sources develop in parallel.The successful realization of HOM interference based on multi-degree-of-freedom optical quantum states paves the way for the expansion of optical quantum technology in higher dimensions.Although the quantum modulation of the space domain of multi-photons is complex and difficult,researchers continue to make important progress in the preparation of high-dimensional entangled states and optical quantum information processing.The study of space-domain modulation of optical quantum states not only allows for selecting photons generated by transitions under spontaneous down conversion in free space but also considers using a variety of microstructures for the generation and modulation of photons.These microstructured devices allow for efficient beam modulation,localized control of polarization,and a significant enhancement of the efficiency of the emitted and detected photons.In the field of quantum photo generation,the generation of down converted photon pairs with spontaneous parametrization over 100 paths has already been achieved by integrating metal lens arrays with nonlinear crystals on a two-dimensional hypersurface.This holds the promise of generating high-dimensional hyperentangled and multiphoton states in an integrated and efficient manner.Conclusions and Prospects In this review,starting from the linear control of a single photon in the spatial domain,we successively describe the spatial coding and transformation of a single photon,the preparation and measurement of two-photon entangled states,as well as the preparation of multi-photon high-dimensional spatial entangled states and their applications in quantum information.We mainly focus on the control in multi-degree-of-freedom and high-dimensional quantum information transformation.In addition,we discuss the recent progress on the spatial photonic quantum states in preparation,coding,measurement,and application.Meanwhile,possible solutions to some key issues are also explored.However,the study on the spatial control of photonic quantum states is still in its infancy and flourishing.There are many challenging important scientific issues and key technologies that need to be solved and broken through:how to achieve high-quality high-dimensional hyperentangled sources based on the spontaneous parametric down-conversion process,how to realize high-dimensional entanglement of multi-photon and multi-degree-of-freedom,and how to construct a feasible way to characterize the high-dimensional spatially entangled states.The interaction of photons with matter has always been a fascinating topic in optical research,and this is also true in the study of optical quantum information.Many studies of the interaction of vector light with matter have been reported,especially concerning the interaction with atomic gases.Most of the experimental studies in this research area belong to the semi-classical regime.We are looking forward to the continuous flow of research results on the interaction of single photons with atoms encoded in the spatial domain.

quantum opticsquantum informationquantum entanglementhigh-dimensional quantum entanglementmulti-degree-of-freedom entanglement

刘志峰、黄双印、陈超、任志成、汪喜林、王慧田

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南京大学固体微结构物理国家重点实验室,南京大学物理学院,江苏南京 210093

人工微结构科学与技术协同创新中心,江苏南京 210093

量子光学 量子信息 量子纠缠 高维量子纠缠 多自由度纠缠

国家自然科学基金国家重点研发计划国家重点研发计划广东省重点领域研发计划

119224062019YFA03087002020YFA03095002020B0303010001

2024

光学学报
中国光学学会 中国科学院上海光学精密机械研究所

光学学报

CSTPCD北大核心
影响因子:1.931
ISSN:0253-2239
年,卷(期):2024.44(10)
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