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    Quantum information in neutron-proton scattering from the M matrix

    Linjun Xie and Hong Shen

    Jinniu Hu*

    Ying Zhang

    • School of Physics, Nankai University, Tianjin 300071, China and Shenzhen Research Institute of Nankai University, Shenzhen 518083, China

    • *Contact author: hujinniu@nankai.edu.cn
    • Contact author: yzhangjcnp@tju.edu.cn

    Phys. Rev. C 114, 034007 – Published 16 September, 2026

    DOI: https://doi.org/10.1103/p67d-fvpj

    Abstract

    We study quantum-information aspects of neutron-proton scattering in the spin-space M-matrix framework. Four representative classes of input states are considered, namely, diagonal mixed states, separable pure states, general two-qubit pure states, and a special Schmidt-like entangled subclass. For each class, ensemble-averaged output mutual information, reduced-state linear entropy, negativity, and geometric quantum discord are calculated in the relative momentum–scattering angle plane. The results show that the outgoing spin correlations are governed jointly by scattering kinematics and by the structure of the incoming quantum ensemble. Input states with stronger intrinsic coherence or entanglement give larger maxima and higher minima in the mutual information, negativity, and geometric quantum discord. The enhanced regions of the mutual information and geometric discord depend on the input states, while the negativity maximum remains concentrated in the high-momentum backward-scattering region. These results extend earlier studies based on product-state entanglement power and provide an ensemble-based description of how spin correlations in neutron-proton scattering arise from the interplay between input-state structure and scattering dynamics.

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