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    Experimental certification of the nonlocal advantages of quantum imaginarity

    Jian-Hao Wu1, Kai-Yu Yuan2, Yun-Xiang Tian1, Hao-Ran Tan1, Yan-Xin Rong1, Zhen Shang1, Yong-Jian Gu1,3,4, and Ya Xiao1,3,4,*

    • 1College of Physics and Optoelectronic Engineering, Ocean University of China, Qingdao 266100, China
    • 2China Mobile (Suzhou) Software Technology Company Limited, Suzhou 215163, China
    • 3Engineering Research Center of Advanced Marine Physical Instruments and Equipment (Ministry of Education), Ocean University of China, Qingdao 266100, China
    • 4Qingdao Key Laboratory of Advanced Optoelectronics, Ocean University of China, Qingdao 266100, China

    • *Contact author: xiaoya@ouc.edu.cn

    Phys. Rev. A 114, 032439 – Published 16 September, 2026

    DOI: https://doi.org/10.1103/7jcn-yq29

    Abstract

    Quantum imaginarity is a distinct resource in quantum information theory, yet its nonlocal properties have not been fully explored. Here, we report an experimental study of the nonlocal advantage of quantum imaginarity (NAQI), in which local measurements on one subsystem can steer the average imaginarity of the conditional states of the other subsystem beyond the corresponding classical bound. The l1-norm of imaginarity inequality is adopted as an experimentally accessible witness. A hybrid optimization algorithm that combines a genetic algorithm with sequential quadratic programming is developed to avoid local optima and accelerate the search for optimal measurement settings. Using polarization-encoded photonic qubits, we prepare two classes of two-qubit Bell-diagonal states and experimentally characterize the imaginarity of the conditional states following local measurements. Clear violations of the l1-norm of imaginarity inequality are observed, providing an experimental certification of NAQI. We further investigate the relationship among NAQI, the nonlocal advantage of quantum coherence (NAQC), and Bell nonlocality (BN) based on their respective inequality criteria. For the two-qubit Werner states considered in this work, the regions of states that violate the respective criteria satisfy DNAQC⊂DNAQI⊂DBN. Our work provides an experimental realization of NAQI and a comparison of different forms of quantum nonclassicality in a photonic platform.

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