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    Quartet correlations near the surface of N=Z nuclei

    Yixin Guo (郭一昕)1,2,3,*, Tomoya Naito (内藤智也)3,2,†, Hiroyuki Tajima (田島裕之)2,4,‡, and Haozhao Liang (梁豪兆)2,3,4,§

    • 1Center for Exotic Nuclear Studies, Institute for Basic Science, Daejeon 34126, Republic of Korea
    • 2Department of Physics, Graduate School of Science, The University of Tokyo, Tokyo 113-0033, Japan
    • 3RIKEN Center for Interdisciplinary Theoretical and Mathematical Sciences (iTHEMS), Wako 351-0198, Japan
    • 4Quark Nuclear Science Institute, The University of Tokyo, Tokyo 113-0033, Japan

    • *Contact author: guoyixin1997@ibs.re.kr
    • †Contact author: tnaito@ribf.riken.jp
    • ‡Contact author: hiroyuki.tajima@tnp.phys.s.u-tokyo.ac.jp
    • §Contact author: haozhao.liang@phys.s.u-tokyo.ac.jp

    Phys. Rev. C 112, 024310 – Published 4 August, 2025

    DOI: https://doi.org/10.1103/4rqf-5kfx

    Abstract

    We theoretically investigate Cooper quartet correlations in N=Z doubly-magic nuclei (Ca40, Sn100, and Pb164). We first examine the quartet condensation fraction in infinite symmetric nuclear matter by using the quartet Bardeen-Cooper-Schrieffer theory. Together with the total nucleon density profiles of doubly-magic nuclei obtained from the Skyrme Hartree-Fock calculation, we discuss the spatial distribution of quartet correlations in finite nuclei within the local density approximation. Large quartet condensate fractions are found at the surface region of an atomic nucleus due to the strong neutron-proton attractive interaction responsible for the deuteron formation in vacuum. Moreover, we discuss a possible microscopic origin of the Wigner term in the context of nucleon-quartet scattering in dilute symmetric nuclear matter. The nucleon-quartet scattering effect on the Wigner term is numerically estimated to be about one order of magnitude of the total empirical strength, indicating the importance of multinucleon clusters in the symmetry energy and mass formula in addition to the neutron-proton pairing.

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