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Ab initio nuclear shell model calculations of some light nuclei with a three-nucleon force.

机译:从头算核壳模型以三核子力计算一些轻核。

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摘要

A consistent microscopic theory of the atomic nucleus is necessary to explain a wide range of nuclear phenomena and to predict nuclear behavior that cannot be measured experimentally. Over the past two decades, aided by the increase in available computational resources, nuclear theory has fundamentally shifted from phenomenological models to first principles (ab initio ) methods for characterizing nuclei. The No-Core Shell Model (NCSM) is an ab initio approach with success in describing light nuclei (A ≤ 16). Previous studies of light nuclei show improvements using a three-nucleon force over the traditional two-nucleon force. The NCSM solves the nuclear quantum many-body problem through diagonalization of a Hamiltonian matrix, which is large, sparse, and irregular. Scaling a shell model code for larger nuclei and including higher body forces poses a complex computational challenge due to its extreme memory requirements. We describe here the NCSM aproach and code improvements to achieve ab initio calculations of light nuclei including three-nucleon forces. These improvements allow for the first calculations of 9Be, using an ab initio three-nucleon interaction derived from chiral effective field theory (chiEFT). Consistent with previous work, our data show the addition of the three-nucleon force improves the binding energy and spectra for 9Be and the three-body effective interaction speeds up the convergence. Surprisingly, preliminary calculations of higher p-shell nuclei (15O and 16O) do not appear to benefit from the same improvements from the three-nucleon force and three-body effective interactions at the attainable model spaces.
机译:必须使用一致的原子核微观理论来解释广泛的核现象并预测无法通过实验测量的核行为。在过去的二十年中,随着可用计算资源的增加,核理论已从现象学模型根本上转变为表征核的第一原理(从头算)方法。无核壳模型(NCSM)是从头开始的方法,可以成功地描述轻核(A≤16)。以前对轻核的研究表明,使用三核力比传统的两核力有了改进。 NCSM通过将哈密顿矩阵大,稀疏且不规则的哈密顿矩阵对角化来解决核量子多体问题。缩放壳模型代码以容纳更大的核并包含更大的体力,这是由于其极端的内存需求而带来的复杂计算挑战。我们在这里描述了NCSM的方法和代码改进,以实现对包括三核子力的轻核的从头算。这些改进允许使用从手性有效场理论(c​​hiEFT)得出的从头算三核相互作用来进行9Be的首次计算。与以前的工作一致,我们的数据显示,添加三个核子力可提高9Be的结合能和光谱,并且三体有效相互作用可加快收敛速度​​。出人意料的是,对较高p壳核(15O和16O)的初步计算似乎没有从可达到的模型空间的三核子力和三体有效相互作用得到的相同改进中受益。

著录项

  • 作者

    Nam, Hai Ah.;

  • 作者单位

    The Claremont Graduate University and San Diego State University.;

  • 授予单位 The Claremont Graduate University and San Diego State University.;
  • 学科 Physics Nuclear.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 150 p.
  • 总页数 150
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物物理学;
  • 关键词

  • 入库时间 2022-08-17 11:37:21

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