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Natural orbitals for many-body expansion methods
- Source :
- Physical Review C
- Publication Year :
- 2021
-
Abstract
- The nuclear many-body problem for medium-mass systems is commonly addressed using wave-function expansion methods that build upon a second-quantized representation of many-body operators with respect to a chosen computational basis. While various options for the computational basis are available, perturbatively constructed natural orbitals recently have been shown to lead to significant improvement in many-body applications yielding faster model-space convergence and lower sensitivity to basis set parameters in large-scale no-core shell model diagonalizations. This work provides a detailed comparison of single-particle basis sets and a systematic benchmark of natural orbitals in nonperturbative many-body calculations using the in-medium similarity renormalization group approach. As a key outcome we find that the construction of natural orbitals in a large single-particle basis enables for performing the many-body calculation in a reduced space of much lower dimension, thus offering significant computational savings in practice that help extend the reach of ab initio methods towards heavier masses and higher accuracy.<br />Comment: 15 pages, 9 figures, published version
- Subjects :
- Physics
Similarity (geometry)
Nuclear Theory
Basis (linear algebra)
Starke Wechselwirkung und exotische Kerne – Abteilung Blaum
FOS: Physical sciences
Renormalization group
Space (mathematics)
Nuclear Theory (nucl-th)
Dimension (vector space)
Convergence (routing)
Statistical physics
Representation (mathematics)
Basis set
Subjects
Details
- Database :
- OpenAIRE
- Journal :
- Physical Review C
- Accession number :
- edsair.doi.dedup.....55103b1f6a2b13195501b43253ffcba0