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Relativistic effective interaction for nuclei, giant resonances, and neutron stars

机译:相对论有效相互作用的原子核,巨型共振和中子星

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Nuclear effective interactions are useful tools in astrophysical applications especially if one can guide the extrapolations to the extremes regions of isospin and density that are required to simulate dense, neutron-rich systems. Isospin extrapolations may be constrained in the laboratory by measuring the neutron skin thickness of a heavy nucleus, such as 208Pb. Similarly, future observations of massive neutron stars will constrain the extrapolations to the high-density domain. In this contribution we introduce a new relativistic effective interaction that is simultaneously constrained by the properties of finite nuclei, their collective excitations, and neutron-star properties. By adjusting two of the empirical parameters of the theory, one can efficiently tune the neutron skin thickness of 208Pb and the maximum neutron-star mass. We illustrate this procedure in response to the recent interpretation of x-ray observations by Steiner, Lattimer, and Brown that suggests that the FSUGold effective interaction predicts neutron-star radii that are too large and a maximum stellar mass that is too small. The new effective interaction is fitted to a neutron skin thickness in 208Pb of only Rn-Rp=0.16 fm and yields a moderately large maximum neutron-star mass of 1.94 M⊙.
机译:核有效相互作用是天文学应用中的有用工具,特别是如果可以将外推引导到模拟高密度中子富集系统所需的等旋旋和密度的极端区域。在实验室中,可通过测量重核(例如208Pb)的中子皮厚度来限制同位旋外推法。同样,未来对大质量中子星的观测将把外推限制在高密度域。在这一贡献中,我们引入了一种新的相对论有效相互作用,该相互作用同时受到有限原子核的性质,它们的集体激发和中子星性质的限制。通过调整该理论的两个经验参数,可以有效地调整208Pb的中子皮厚度和最大中子星质量。我们根据Steiner,Lattimer和Brown对X射线观测的最新解释说明了这一程序,这表明FSUGold有效相互作用预示着中子星半径太大而最大恒星质量却太小。新的有效相互作用适合于208Pb的中子皮厚度仅为Rn-Rp = 0.16 fm,并产生一个中等大的最大中子星质量,为1.94M⊙。

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