Proton–neutron pairing in N=Z nuclei: Quartetting versus pair condensation

The isoscalar proton–neutron pairing and isovector pairing, including both isovector proton–neutron pairing and like-particle pairing, are treated in a formalism which conserves exactly the particle number and the isospin. The formalism is designed for self-conjugate (N=Z) systems of nucleons moving...

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Main Authors: N. Sandulescu, D. Negrea, D. Gambacurta
Format: Article
Language:English
Published: Elsevier 2015-12-01
Series:Physics Letters B
Online Access:http://www.sciencedirect.com/science/article/pii/S0370269315008229
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spelling doaj-ea284115bebd400bba76b4f7e2db55252020-11-25T01:05:33ZengElsevierPhysics Letters B0370-26931873-24452015-12-01751C34835110.1016/j.physletb.2015.10.063Proton–neutron pairing in N=Z nuclei: Quartetting versus pair condensationN. Sandulescu0D. Negrea1D. Gambacurta2National Institute of Physics and Nuclear Engineering, RO-077125 Măgurele, RomaniaNational Institute of Physics and Nuclear Engineering, RO-077125 Măgurele, RomaniaIstituto Nazionale di Fisica Nucleare - Sezione di Catania, Via S. Sofia 64, I-95123 Catania, ItalyThe isoscalar proton–neutron pairing and isovector pairing, including both isovector proton–neutron pairing and like-particle pairing, are treated in a formalism which conserves exactly the particle number and the isospin. The formalism is designed for self-conjugate (N=Z) systems of nucleons moving in axially deformed mean fields and interacting through the most general isovector and isoscalar pairing interactions. The ground state of these systems is described by a superposition of two types of condensates, i.e., condensates of isovector quartets, built by two isovector pairs coupled to the total isospin T=0, and condensates of isoscalar proton–neutron pairs. The comparison with the exact solutions of realistic isovector–isoscalar pairing Hamiltonians shows that this ansatz for the ground state is able to describe with high precision the pairing correlation energies. It is also shown that, at variance with the majority of Hartree–Fock–Bogoliubov calculations, in the present formalism the isovector and isoscalar pairing correlations coexist for any pairing interactions. The competition between the isovector and isoscalar proton–neutron pairing correlations is studied for N=Z nuclei with the valence nucleons moving in the sd and pf shells and in the major shell above 100Sn. We find that in these nuclei the isovector pairing prevail over the isoscalar pairing, especially for heavier nuclei.http://www.sciencedirect.com/science/article/pii/S0370269315008229
collection DOAJ
language English
format Article
sources DOAJ
author N. Sandulescu
D. Negrea
D. Gambacurta
spellingShingle N. Sandulescu
D. Negrea
D. Gambacurta
Proton–neutron pairing in N=Z nuclei: Quartetting versus pair condensation
Physics Letters B
author_facet N. Sandulescu
D. Negrea
D. Gambacurta
author_sort N. Sandulescu
title Proton–neutron pairing in N=Z nuclei: Quartetting versus pair condensation
title_short Proton–neutron pairing in N=Z nuclei: Quartetting versus pair condensation
title_full Proton–neutron pairing in N=Z nuclei: Quartetting versus pair condensation
title_fullStr Proton–neutron pairing in N=Z nuclei: Quartetting versus pair condensation
title_full_unstemmed Proton–neutron pairing in N=Z nuclei: Quartetting versus pair condensation
title_sort proton–neutron pairing in n=z nuclei: quartetting versus pair condensation
publisher Elsevier
series Physics Letters B
issn 0370-2693
1873-2445
publishDate 2015-12-01
description The isoscalar proton–neutron pairing and isovector pairing, including both isovector proton–neutron pairing and like-particle pairing, are treated in a formalism which conserves exactly the particle number and the isospin. The formalism is designed for self-conjugate (N=Z) systems of nucleons moving in axially deformed mean fields and interacting through the most general isovector and isoscalar pairing interactions. The ground state of these systems is described by a superposition of two types of condensates, i.e., condensates of isovector quartets, built by two isovector pairs coupled to the total isospin T=0, and condensates of isoscalar proton–neutron pairs. The comparison with the exact solutions of realistic isovector–isoscalar pairing Hamiltonians shows that this ansatz for the ground state is able to describe with high precision the pairing correlation energies. It is also shown that, at variance with the majority of Hartree–Fock–Bogoliubov calculations, in the present formalism the isovector and isoscalar pairing correlations coexist for any pairing interactions. The competition between the isovector and isoscalar proton–neutron pairing correlations is studied for N=Z nuclei with the valence nucleons moving in the sd and pf shells and in the major shell above 100Sn. We find that in these nuclei the isovector pairing prevail over the isoscalar pairing, especially for heavier nuclei.
url http://www.sciencedirect.com/science/article/pii/S0370269315008229
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AT dnegrea protonneutronpairinginnznucleiquartettingversuspaircondensation
AT dgambacurta protonneutronpairinginnznucleiquartettingversuspaircondensation
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