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    Chiral-scale effective field theory for dense and thermal systems

    Jia-Ying Xiong1,2,3,4, Yao Ma4,*, Bing-Kai Sheng1,†, and Yong-Liang Ma4,5,‡

    • *Contact author: mayao@nju.edu.cn
    • †Contact author: bingkai.sheng@ucas.ac.cn
    • ‡Contact author: ylma@nju.edu.cn

    Phys. Rev. D 113, 054020 – Published 16 March, 2026

    DOI: https://doi.org/10.1103/cqvy-b67w

    Abstract

    We established a new power counting scheme, chiral-scale density counting (CSDC) rules, for the application of the chiral-scale effective field theory to nuclear matter at finite densities and temperatures. Within this framework, the free fermion gas is at the leading order, while one-boson-exchange interactions appear at the next-to-leading order, and the multimeson couplings are at higher orders. Then, we applied the CSDC rules to study the nuclear matter properties, and estimated the valid regions of the CSDC rules. It was found that the zero temperature symmetric nuclear matter properties around saturation density and the critical temperature of liquid-gas phase transition can be captured by an appropriate choice of CSDC orders, and the results beyond these regions are align with the chiral nuclear force. Moreover, the evolution of scale symmetry was found to be consistent with previous studies. The results of this work indicate that the quantum corrections may be crucial in the studies of nuclear matter in a wide density region.

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