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arXiv · 1806.10931

Bogoliubov Many-Body Perturbation Theory for Open-Shell Nuclei

Abstract

A novel Rayleigh-Schrödinger many-body perturbation theory (MBPT) approach is introduced by making use of a particle-number-breaking Bogoliubov reference state to tackle (near-)degenerate open-shell fermionic systems. By choosing a reference state that solves the Hartree-Fock-Bogoliubov variational problem, the approach reduces to the well-tested Møller-Plesset, i.e., Hartree-Fock based, MBPT when applied to closed-shell systems. Due to its algorithmic simplicity, the newly developed framework provides a computationally simple yet accurate alternative to state-of-the-art non-perturbative many-body approaches. At the price of working in the quasi-particle basis associated with a single-particle basis of sufficient size, the computational scaling of the method is independent of the particle number. This paper presents the first realistic applications of the method ranging from the oxygen to the nickel isotopic chains on the basis of a modern nuclear Hamiltonian derived from chiral effective field theory.

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Alexander Tichai, Pierre Arthuis, Thomas Duguet, Heiko Hergert, Vittorio Somá, Robert Roth. 2018-06-28. Bogoliubov Many-Body Perturbation Theory for Open-Shell Nuclei. https://doi.org/10.1016/j.physletb.2018.09.044

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