Spinodal instabilities of spin-polarized asymmetric nuclear matter

A. Polls, I. Vidaña
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Abstract

We analyze the spinodal instabilities of spin polarized asymmetric nuclear matter at zero temperature for several configurations of the neutron and proton spins. The calculations are performed with the Brueckner--Hartree--Fock (BHF) approach using the Argonne V18 nucleon-nucleon potential plus a three-nucleon force of Urbana type. An analytical parametrization of the energy density, which reproduces with good accuracy the BHF results, is employed to determine the spinodal instability region. We find that, independently of the of the orientation of the neutron and proton spins, the spinodal instability region shinks when the system is polarized, being its size smaller smaller when neutron and proton spins are antiparallel than when they are oriented in a parallel way. We find also that the spinodal instability is always dominated by total density fluctuation independently of the degree of polarization of the system, and that restoration of the isospin symmetry in the liquid phase, {\it i.e.,} the so-called isospin distillation or fragmentation effect, becomes less efficient with the polarization of the system.
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自旋极化不对称核物质的旋量不稳定性
本文分析了中子和质子自旋的几种构型下自旋极化不对称核物质在零温度下的自旋不稳定性。计算采用Brueckner—Hartree—Fock (BHF)方法,使用Argonne V18核子-核子势加上Urbana型三核子力。能量密度的解析参数化可以很好地再现BHF结果,并用于确定旋臂失稳区域。我们发现,与中子和质子自旋的方向无关,当系统极化时,旋量不稳定区缩小,当中子和质子自旋反平行时,其尺寸小于平行方向时。我们还发现,旋量不稳定性总是由与系统极化程度无关的总密度波动主导,并且液相中同位旋对称的恢复,即所谓的同位旋蒸馏或破碎效应,随着系统的极化而变得不那么有效。
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