Deformed natural orbitals for ab initio calculations

IF 2.6 3区 物理与天体物理 Q2 PHYSICS, NUCLEAR
A. Scalesi, T. Duguet, M. Frosini, V. Somà
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Abstract

The rapid development of ab initio nuclear structure methods towards doubly open-shell nuclei, heavy nuclei and greater accuracy occurs at the price of evermore increased computational costs, especially RAM and CPU time. While most of the numerical simulations are carried out by expanding relevant operators and wave functions on the spherical harmonic oscillator basis, alternative one-body bases offering advantages in terms of computational efficiency have recently been investigated. In particular, the so-called natural basis used in combination with symmetry-conserving methods applicable to doubly closed-shell nuclei has proven beneficial in this respect. The present work examines the performance of the natural basis in the context of symmetry-breaking many-body calculations enabling the description of superfluid and deformed open-shell nuclei at polynomial cost with system’s size. First, it is demonstrated that the advantage observed for closed-shell nuclei carries over to open-shell ones. A detailed investigation of natural-orbital wave functions provides useful insight to support this finding and to explain the superiority of the natural basis over alternative ones. Second, it is shown that the use of natural orbitals combined with importance-truncation techniques leads to an even greater gain in terms of computational costs. The present results pave the way for the systematic use of natural-orbital bases in future implementations of non-perturbative many-body methods.

用于从头计算的变形自然轨道
从头算核结构方法向双开壳核、重核和更高精度方向的快速发展是以不断增加的计算成本,特别是RAM和CPU时间为代价的。虽然大多数数值模拟都是通过在球谐振子基础上展开相关算符和波函数来进行的,但最近研究了在计算效率方面具有优势的另一种单体基。特别是,所谓的自然基与适用于双闭壳核的对称守恒方法相结合,已证明在这方面是有益的。本工作考察了自然基在对称破断多体计算背景下的性能,使超流体和变形开壳核的描述具有系统尺寸的多项式代价。首先,证明了在闭壳核中观察到的优势延续到开壳核中。对自然轨道波函数的详细研究为支持这一发现提供了有用的见解,并解释了自然基相对于其他基的优越性。其次,它表明,使用自然轨道与重要性截断技术相结合,导致在计算成本方面获得更大的收益。目前的结果为将来在非微扰多体方法的实现中系统地使用自然轨道基铺平了道路。
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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来源期刊
The European Physical Journal A
The European Physical Journal A 物理-物理:核物理
CiteScore
5.00
自引率
18.50%
发文量
216
审稿时长
3-8 weeks
期刊介绍: Hadron Physics Hadron Structure Hadron Spectroscopy Hadronic and Electroweak Interactions of Hadrons Nonperturbative Approaches to QCD Phenomenological Approaches to Hadron Physics Nuclear and Quark Matter Heavy-Ion Collisions Phase Diagram of the Strong Interaction Hard Probes Quark-Gluon Plasma and Hadronic Matter Relativistic Transport and Hydrodynamics Compact Stars Nuclear Physics Nuclear Structure and Reactions Few-Body Systems Radioactive Beams Electroweak Interactions Nuclear Astrophysics Article Categories Letters (Open Access) Regular Articles New Tools and Techniques Reviews.
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