Manipulating the Spatial Structure of Second-Order Quantum Coherence Using Entangled Photons

Abstract High-order quantum coherence reveals the statistical correlation of quantum particles. Manipulation of quantum coherence of light in the temporal domain enables the production of the single-photon source, which has become one of the most important quantum resources. High-order quantum coher...

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Bibliographic Details
Published inChinese physics letters Vol. 41; no. 7; pp. 74205 - 74211
Main Authors Huang, Shuang-Yin, Gao, Jing, Ren, Zhi-Cheng, Cheng, Zi-Mo, Zhu, Wen-Zheng, Xue, Shu-Tian, Lou, Yan-Chao, Liu, Zhi-Feng, Chen, Chao, Zhu, Fei, Yang, Li-Ping, Wang, Xi-Lin, Wang, Hui-Tian
Format Journal Article
LanguageEnglish
Published Chinese Physical Society and IOP Publishing Ltd 01.07.2024
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Summary:Abstract High-order quantum coherence reveals the statistical correlation of quantum particles. Manipulation of quantum coherence of light in the temporal domain enables the production of the single-photon source, which has become one of the most important quantum resources. High-order quantum coherence in the spatial domain plays a crucial role in a variety of applications, such as quantum imaging, holography, and microscopy. However, the active control of second-order spatial quantum coherence remains a challenging task. Here we predict theoretically and demonstrate experimentally the first active manipulation of second-order spatial quantum coherence, which exhibits the capability of switching between bunching and anti-bunching, by mapping the entanglement of spatially structured photons. We also show that signal processing based on quantum coherence exhibits robust resistance to intensity disturbance. Our findings not only enhance existing applications but also pave the way for broader utilization of higher-order spatial quantum coherence.
ISSN:0256-307X
1741-3540
DOI:10.1088/0256-307X/41/7/074205