当前位置: X-MOL 学术Annu. Rev. Nucl. Part. Sci. › 论文详情
Our official English website, www.x-mol.net, welcomes your feedback! (Note: you will need to create a separate account there.)
Chiral Effective Field Theory and the High-Density Nuclear Equation of State
Annual Review of Nuclear and Particle Science ( IF 12.4 ) Pub Date : 2021-09-21 , DOI: 10.1146/annurev-nucl-102419-041903
C. Drischler 1, 2, 3 , J.W. Holt 4 , C. Wellenhofer 5, 6
Affiliation  

Born in the aftermath of core-collapse supernovae, neutron stars contain matter under extraordinary conditions of density and temperature that are difficult to reproduce in the laboratory. In recent years, neutron star observations have begun to yield novel insights into the nature of strongly interacting matter in the high-density regime where current theoretical models are challenged. At the same time, chiral effective field theory has developed into a powerful framework to study nuclear matter properties with quantified uncertainties in the moderate-density regime for modeling neutron stars. In this article, we review recent developments in chiral effective field theory and focus on many-body perturbation theory as a computationally efficient tool for calculating the properties of hot and dense nuclear matter. We also demonstrate how effective field theory enables statistically meaningful comparisons among nuclear theory predictions, nuclear experiments, and observational constraints on the nuclear equation of state.

中文翻译:


手征有效场论与高密度核状态方程

中子星诞生于核心坍缩超新星的余波中,其含有在实验室难以再现的异常密度和温度条件下的物质。近年来,中子星观测开始对当前理论模型受到挑战的高密度区域中强相互作用物质的性质产生新的见解。与此同时,手征有效场理论已经发展成为一个强大的框架,用于研究中子星建模的中等密度区域中具有量化不确定性的核物质特性。在本文中,我们回顾了手性有效场理论的最新发展,并重点关注多体微扰理论作为计算热和致密核物质特性的有效计算工具。

更新日期:2021-09-22
down
wechat
bug