Neutron matter at finite temperature based on chiral effective field theory interactions

J. Keller, C. Wellenhofer, K. Hebeler, A. Schwenk
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引用次数: 9

Abstract

We study the equation of state of neutron matter at finite temperature based on two- and three-nucleon interactions derived within chiral effective field theory to next-to-next-to-next-to-leading order. The free energy, pressure, entropy, and internal energy are calculated using many-body perturbation theory including terms up to third order around the self-consistent Hartree-Fock solution. We include contributions from three-nucleon interactions without employing the normal-ordering approximation and provide theoretical uncertainty estimates based on an order-by-order analysis in the chiral expansion. Our results demonstrate that thermal effects can be captured remarkably well via a thermal index and a density-dependent effective mass. The presented framework provides the basis for studying the dense matter equation of state at general temperatures and proton fractions relevant for core-collapse supernovae and neutron star mergers.
基于手性有效场理论的有限温度下中子物质相互作用
基于手性有效场理论推导出的二核子和三核子相互作用的次-次-次-次-先序,研究了有限温度下中子物质的态方程。自由能、压力、熵和内能是用多体微扰理论计算的,包括围绕自洽Hartree-Fock解的三阶项。我们在不采用正序近似的情况下包括了三核子相互作用的贡献,并提供了基于手性展开中逐级分析的理论不确定性估计。我们的研究结果表明,热效应可以通过热指数和密度相关的有效质量很好地捕获。所提出的框架为研究致密物质在一般温度下的状态方程和与核心坍缩超新星和中子星合并相关的质子分数提供了基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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