Nuclear matter properties from chiral-scale effective theory including a dilatonic scalar meson

Fuente: arXiv
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Main Authors: Zhang, Lu-Qi, Ma, Yao, Ma, Yong-Liang
Format: Preprint
Published: 2024
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author Zhang, Lu-Qi
Ma, Yao
Ma, Yong-Liang
author_facet Zhang, Lu-Qi
Ma, Yao
Ma, Yong-Liang
contents Chiral effective theory has become a powerful tool for studying the low-energy properties of QCD. In this work, we apply an extended chiral effective theory -- chiral-scale effective theory -- including a dilatonic scalar meson to study nuclear matter and find that the properties around saturation density can be well reproduced. Compared to the traditionally used Walecka-type models in nuclear matter studies, our approach improves the behavior of symmetry energy and the incompressibility coefficient in describing empirical data without introducing additional freedoms. Moreover, the predicted neutron star structures fall within the constraints of GW170817, PSR J0740+6620, and PSR J0030+0451, while the maximum neutron star mass can reach about $~3M_{\odot}$ with a pure hadronic phase. Additionally, we find that symmetry patterns of the effective theory significantly impact neutron star structures. %In chiral-scale effective theory, effective operators are well organized by chiral-scale orders and freedoms induced by QCD symmetry patterns. We believe that introducing this type of theory into nuclear matter studies can lead to a deeper understanding of QCD, nuclear matter, and compact astrophysical objects.
format Preprint
id arxiv_https___arxiv_org_abs_2412_19023
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Nuclear matter properties from chiral-scale effective theory including a dilatonic scalar meson
Zhang, Lu-Qi
Ma, Yao
Ma, Yong-Liang
Nuclear Theory
High Energy Astrophysical Phenomena
High Energy Physics - Phenomenology
Chiral effective theory has become a powerful tool for studying the low-energy properties of QCD. In this work, we apply an extended chiral effective theory -- chiral-scale effective theory -- including a dilatonic scalar meson to study nuclear matter and find that the properties around saturation density can be well reproduced. Compared to the traditionally used Walecka-type models in nuclear matter studies, our approach improves the behavior of symmetry energy and the incompressibility coefficient in describing empirical data without introducing additional freedoms. Moreover, the predicted neutron star structures fall within the constraints of GW170817, PSR J0740+6620, and PSR J0030+0451, while the maximum neutron star mass can reach about $~3M_{\odot}$ with a pure hadronic phase. Additionally, we find that symmetry patterns of the effective theory significantly impact neutron star structures. %In chiral-scale effective theory, effective operators are well organized by chiral-scale orders and freedoms induced by QCD symmetry patterns. We believe that introducing this type of theory into nuclear matter studies can lead to a deeper understanding of QCD, nuclear matter, and compact astrophysical objects.
title Nuclear matter properties from chiral-scale effective theory including a dilatonic scalar meson
topic Nuclear Theory
High Energy Astrophysical Phenomena
High Energy Physics - Phenomenology
url https://arxiv.org/abs/2412.19023