Next Article in Journal
Physical Acceptability of the Renyi, Tsallis and Sharma-Mittal Holographic Dark Energy Models in the f(T,B) Gravity under Hubble’s Cutoff
Next Article in Special Issue
The NUMEN Project: Toward New Experiments with High-Intensity Beams
Previous Article in Journal
Nonperturbative Quantization Approach for QED on the Hopf Bundle
Previous Article in Special Issue
What Is Matter According to Particle Physics, and Why Try to Observe Its Creation in a Lab?
 
 
Font Type:
Arial Georgia Verdana
Font Size:
Aa Aa Aa
Line Spacing:
Column Width:
Background:
Article

Role of Single-Particle Energies in Microscopic Interacting Boson Model Double Beta Decay Calculations

1
Finnish Institute for Educational Research, University of Jyväskylä, P.O. Box 35, 40014 Jyväskylä, Finland
2
Center for Theoretical Physics, Sloane Physics Laboratory, Yale University, New Haven, CT 06520-8120, USA
Universe 2021, 7(3), 66; https://doi.org/10.3390/universe7030066
Submission received: 12 February 2021 / Revised: 6 March 2021 / Accepted: 7 March 2021 / Published: 11 March 2021
(This article belongs to the Special Issue Nuclear Issues for Neutrino Physics)

Abstract

:
Single-particle level energies form a significant input in nuclear physics calculations where single-particle degrees of freedom are taken into account, including microscopic interacting boson model investigations. The single-particle energies may be treated as input parameters that are fitted to reach an optimal fit to the data. Alternatively, they can be calculated using a mean field potential, or they can be extracted from available experimental data, as is done in the current study. The role of single-particle level energies in the microscopic interacting boson model calculations is discussed with special emphasis on recent double beta decay calculations.

1. Introduction

The question of the nature of neutrinos, are they Dirac or Majorana particles, and what are their masses, as well as phases, in the mixing matrix, is one of the most fundamental open problems in physics today. Thus, observing neutrinoless double beta decay ( 0 ν β β ) is at the moment one of the major experimental challenges [1,2,3,4], motivated also by its potential as a promising candidate for observing lepton number violation. If detected, it would offer information about the fundamental nature of neutrinos and about the absolute effective neutrino mass [5,6,7,8,9], as well as right-handed leptonic current coupling constants [9,10]. It would also shed light on the matter– antimatter asymmetry of the universe [11].
The half-life of 0 ν β β decay can be factorized as
[ τ 1 / 2 0 ν ] 1 = G 0 ν M 0 ν 2 f ( m i , U e i ) 2 ,
to consist of phase space factor G 0 ν [6,9,12], nuclear matrix element M 0 ν and function containing physics beyond the standard model, f ( m i , U e i ) , through the masses m i and mixing matrix elements U e i of neutrino species. Related to yet unobserved neutrinoless double beta decay, there is also the process allowed by the standard model and observed in several nuclei [13], where two (anti)neutrinos are emitted ( 2 ν β β ). In order to access physics beyond the standard model contained in the function f in Equation (1), an accurate calculation of the nuclear matrix element, M 0 ν , is needed. The calculations of M 0 ν are crucial when extracting the neutrino mass m ν if neutrinoless double beta decay is observed, and serve the purpose of guiding future searches if 0 ν β β remains undetected.
Since 0 ν β β decay is a unique, not yet observed process, it is a challenge also for theoretical models. Thus, information from other studies such as nucleon transfer reactions [14,15,16,17,18,19,20], the photonuclear reactions [21,22,23], the nuclear muon capture process [24,25,26], the study of single β [27,28,29], and 2 ν β β decays [29,30,31,32,33,34,35], as well as, single-charge-exchange [36,37,38,39,40,41,42,43], and pion double-charge-exchange [44,45,46] reactions are highly valuable in view of estimating the uncertainties of 0 ν β β decay calculations.
On the other hand, the energies of the single particle orbitals have a significant role in models of nuclear structure. In addition to being essential tests of the shell model for doubly magic or semi-magic nuclei, they also constitute important input parameters in many nuclear structure calculations such as the (interacting) shell model, quasiparticle random-phase approximation, microscopic interacting boson model, or any other nuclear model calculations where single-particle degrees of freedom are considered.
Experimental single-particle energies are known to change with the nucleon number primarily due to the monopole–monopole part of the neutron–proton residual interaction, which is of interest itself. Implicitly single-particle energies are of interest since they play a role in the description of various nuclear physical and astrophysical processes. These include also double beta decay (DBD), single beta decay, and double charge exchange reaction (DCE). An issue closely connected to single-particle levels is their occupancies. Ground state occupancies can be obtained experimentally by one nucleon transfer reaction. Such experiments have been carried out for several candidates participating in 0 ν β β decay in a series of experiments [16,17,18,19,20]. The obtained results offer an important test for theoretical models used to calculate nuclear properties [19,20,47,48,49,50]. The comparison of calculated occupation probabilities with experimentally obtained ones serves the purpose of assessing the goodness of the chosen single-particle energies, as well as the used wave functions.
In the current study, the role of SPEs in the microscopic interacting boson model (IBM-2) calculations is discussed. In IBM-2, valence nucleon pairs are described as bosons with angular momentum 0 or 2, denominated as s and d bosons, respectively. IBM-2 was originally introduced as a phenomenological approach to describe collective excitations in nuclei [51,52,53] and its relation with the shell model was established in References [54,55,56].
In Section 2, a brief summary of how single-particle energies (SPEs) enter interacting boson model calculations is given followed by the introduction of considered neutron/proton single-particle energies (SPEs) in Section 3. The impact of using different values of the SPEs on pair structure coefficients in general is discussed in Section 4, and in Section 5, specific results of 0 ν β β nuclear matrix elements, including their connection to DCE nuclear matrix elements, are considered. Finally, conclusions are presented in Section 6.

2. Role of Single-Particle Energies in IBM-2 Calculations

Formally, any problem dealing with fermions may be transformed into an equivalent problem dealing with bosons. For this transformation mapping from the original fermion space, the shell model space, onto desired space, in this case IBM-2 space, is needed. A detailed description of such mapping procedure can be found in References [54,55] and in particular concerning DBD in Reference [57]. Here, a brief review of the main aspects of the method is given. The starting points are the shell model creation operators of collective S and D pairs with angular momenta 0 and 2, respectively:
S ρ = j α ρ , j Ω j 2 ρ j × ρ j ( 0 ) ,
D ρ , M = j j β ρ , j j 1 1 + δ j j ρ j × ρ j M ( 2 ) ,
where Ω j = j + 1 / 2 and ρ refers to proton or neutron indices, ρ = π , ν . For each kind of nucleon, these pairs are then used to span the subspaces, the S D fermion spaces, of the full shell model spaces. The states of each subspace have a certain number of protons or neutrons n, generalized seniority quantum number v, and angular momentum J, and are labeled accordingly as n , v , α , J ,where α denotes additional quantum numbers required for a unique specification of the states.
There are several ways to obtain the pair structure coefficients α ρ , j and β ρ , j j in Equations (2) and (3) [58,59,60,61,62,63]. In the method given by [63] and followed here, S ρ and D ρ , M generate the 0 + ground state and the first excited 2 + two-fermion state. These states correspond to a nucleus with two-valence-particles or two-valence-holes outside a closed shell. The used method allows the inclusion of some possible renormalization effects induced by the neutron–proton interaction to be included approximately. For the effective interaction between identical nucleons, the surface delta interaction (SDI) is chosen. The associated isovector strength parameter A 1 is fitted to reproduce the energy difference between the 0 + ground state and the first excited 2 + in the corresponding two-valence-particle or two-valence-hole nucleus. The single-particle energies enter the SDI calculation as input.
As a result, pair structure coefficients are obtained and are normalized as
j Ω j α j 2 = j Ω j ,
j j β j j 2 = 1 ,
where the label ρ is from now on omitted for simplicity.
The states belonging to the S D subspaces are then mapped onto s d boson states of the IBM space as
S s
D d ,
and similarly the fermionic operators are mapped into bosonic operators
O F O B
using the Otsuka, Arima, and lachello (OAI) method [55]. In the OAI method, the matrix element of the bosonic image of the operator in question between IBM states, is made equal to the corresponding fermionic shell model matrix element. When calculating the matrix elements in the shell model using the generalized seniority scheme and making the correspondence between the generalized-seniority state vectors and boson state vectors, the commutator method of References [64,65] is employed. By using the OAI and commutator methods, one is assured that the matrix elements between fermionic states in the collective subspace are identical to the matrix elements in the bosonic space.
A detailed description for obtaining factors required for the mapping of combinations of s and d operators relevant in the description of DBD in IBM-2 is given in Reference [57].

3. Considered Sets of Single-Particle Energies

The single-particle energies may be considered as input parameters to be fitted to reach an optimal correspondence with the data, or alternatively they can be calculated using a mean field potential, or they can be extracted from available experimental data. In Reference [50] the single-particle and single-hole energies for protons and neutrons were extracted from experimental data and discussed in detail. The underlying motivation in [50] was to estimate the validity of the single-particle energies and check the reliability of the used IBM-2 wave functions by calculating occupancies of the appropriate single-particle levels. These kinds of tests are particularly important in the case of nuclei involved in DBD, as they directly affect the evaluation of the nuclear matrix elements and thus their reliability [66]. In Reference [50], single-particle energies for several major shells were updated to values given in Table 1, Table 2, Table 3 and Table 4 and marked as set (I). These single-particle energy sets were then used to calculate the occupancies of several nuclei of interest in neutrinoless double beta decay. Finally, the results were compared with experimental occupancies, when available, as well as other theoretical calculations, and good correspondence was obtained. The comparison set (II) in Table 1, Table 2, Table 3 and Table 4 [57] refers to values used in previous IBM-2 double beta decay calculations.

3.1. Single-Particle Energies for the 28-50 Shell

In Table 1, the single-particle energies for the orbitals of the 28-50 shell for proton particles and holes are given. The proton particle energies are appropriate for A 76 , 82 . The updated values of set (I) were obtained by interpolating linearly between proton particle SPEs of set (II) in Table 1 and proton hole SPEs of set (II) (but inverted to particle energies). The proton hole energies in set (I) are appropriate for A 100 , 116 and N 60 and were obtained from the spectrum of 107 In . For set (II), the energies were taken, without any interpolation, from the spectrum of 57 Cu for proton particles, and from isotones N = 50 for proton holes, suitable for A 100 and neutron number N < 50 .
The neutron hole energies of set (I) in Table 2 are appropriate for A 76 , 82 and Z 40 and were obtained from the spectrum of 89 Zr . For set (II) the energies were taken from the spectrum of 57 Ni.
As can be seen from Table 1 and Table 2, in shell 28-50 for proton particles the biggest changes in SPEs are for 1 g 9 / 2 and 1 f 5 / 2 , which both are lowered when going from set (II) to set (I). For proton holes, as well as neutron holes, all other orbitals are lowered in energy with respect to the lowest orbital 1 g 7 / 2 .

3.2. Single-Particle Energies for the 50-82 Shell

In Table 3, the single-particle energies for the orbitals of the 50-82 shell for proton particles are given, appropriate for A 128 , 130 , 136 . The energies in set (I) were taken from the spectrum of 133 Sb , the exception being the 3 s 1 / 2 level, where the energy was obtained from systematics of odd N = 82 nuclei [67]. For set (II), the proton particle energies were taken from the spectrum of 133 Sb without any exceptions.
The energies for neutron particles and holes in the 50-82 shell are shown in Table 4. In set (I) for neutron particles, suitable for A 100 , 116 , the energies of 3 s 1 / 2 , 2 d 3 / 2 , and 1 g 7 / 2 orbitals were obtained from the spectra of 97 Pd , 95 Ru , and 101 Sn , respectively. For the 1 h 11 / 2 orbital, the energy was taken from systematics of odd N = 51 nuclei. For set (II), the neutron particle energies were taken from the spectra of 91 Zr. The neutron hole energies, appropriate for A 128 , 130 , 136 were obtained from the spectrum of 131 Sn for both set (I) and set (II), so there were no changes in these single-particle energies.
In shell 50-82 for proton particles and neutron holes, there are only minor changes in SPEs, as shown in Table 3 and Table 4. For neutron particles, in Table 4, the 1 h 11 / 2 orbital is raised, whereas 3 s 1 / 2 , 2 d 3 / 2 , and 1 g 7 / 2 are lowered.

4. Impact of Single-Particle Energies on Pair Structure Coefficients

In the definition of the pair operators Equations (2) and (3), the pair structure coefficients α and β appear. The method used for obtaining the coefficients α and β is by diagonalizing the SDI (for details see, e.g., in [68]), where inputs are the single-particle energies and values of A 1 . The obtained pair structure coefficients for different shells are given in Table 5, Table 6, Table 7 and Table 8.
In shell 28-50 for proton particles, Table 5, the obtained α with set (I) SPEs are smaller in magnitude than the ones obtained with set (II), the exception being α 5 / 2 , and β are larger, the exception being β 3 / 23 / 2 . For proton holes, Table 5, as well as for neutron holes, Table 6, α and β are larger, the exceptions being α 9 / 2 and β 9 / 29 / 2 . In hole energies, 1 g 9 / 2 is the lowest orbital and as already noted compared to set (II) in set (I), other orbitals are lowered in energy with respect to the lowest orbital.
In shell 50-82 for proton particles, Table 7, and for neutron holes, Table 8, the obtained α and β with set (I) remain essentially the same. For neutron particles, Table 8, α and β are smaller for 5 / 2 and 11 / 2 , and larger for others. 2 d 5 / 2 is the lowest orbital and 1 h 11 / 2 is the highest orbital, which is raised even higher in set (I) compared to set (II).

5. Impact of the SPEs on IBM-2 Calculations

5.1. Neutrinoless Double Beta Decay

In the current calculation, the closure approximation is assumed. Short range correlations (SRC) are taken into account using the Jastrow function with Argonne parametrization [69]. The details of the 0 ν β β calculation in IBM-2, including form factors, neutrino potential, form factor charges, etc., are given in [70]. In Table 9, the 0 ν β β decay nuclear matrix elements calculated using SPEs of set (II), labeled as “old”, and SPEs of set (I), labeled as “new”, are shown. The full matrix element is divided into Fermi ( M F ), Gamow–Teller ( M G T ) and tensor ( M T ) components as
M ν = g A 2 g V g A 2 M F + M G T M T .
Conservative quenched value g A = 1 is chosen simply to allow straightforward use of other values of g A using Equation (9) for the full matrix element. The quenching of g A is still an open question, which, however, is beyond the scope of the current study. Note that a negative sign of the tensor nuclear matrix element (NME) relative to that of GT NME, as shown in Equation (9), was derived in Reference [70] in contrary to previous papers [30,71].
As was shown in Table 1 for proton particles, in set (II), the high-j orbitals are at higher excitation energy than in set (I). In addition, neutron hole energies in Table 2 are more packed for set (I) than set (II). This leads to generally smaller α and larger β in Table 5 and Table 6. Eventually, also the calculated 0 ν β β decay nuclear matrix elements for nuclei 76 Ge and 82 Se, where proton particles and neutron holes occupy the shell 28-50, are larger when set (I) SPEs are employed, as shown in Table 9. For 100 Mo and 116 Cd, proton holes occupy the shell 28-50 and neutron particles occupy the shell 50-82. In these cases, the energies are more compressed in set (I) than in set (II). Thus α and β in Table 5 are generally larger, and 0 ν β β NMEs, as well, are larger. In the description of 0 ν β β decay in the framework of IBM-2 (see Reference [57] for details), α and β are raised to exponents depending on the number of bosons (pairs), and appear in products. Thus, the increase of NMEs is shown especially when both proton and neutron energies are affected and the number of bosons (valence particles outside closed shells) is higher. The biggest increase in NMEs are for 76 Ge, 82 Se, and 100 Mo, and is mainly due to an increase in the GT component. The case A = 116 is less affected because of the low number of protons outside the closed shell.
In shell 50-82 for proton particles, Table 7, and for neutron holes, Table 8, the SPEs remain essentially the same, as do α and β , and thus also NMEs in Table 9 for 128 Te, 130 Te, and 136 Xe remain essentially the same. The minor change in NMEs in these cases is due to updated form factor charge values used in [70] compared to [30].
Compared to NMEs obtained with other nuclear models and taking into account the sign of the tensor matrix element, the current results are generally very close to QRPA-Tü [72] and QRPA-Jy [73] results, and 1.5–2 times larger than the ones obtained with deformed QRPA [74] and ISM [75].

5.2. Double Charge Exchange Reaction

It has been recently proposed that the nuclear matrix elements involved in double charge exchange reactions may resemble, at least for their geometrical structure, those involved in neutrinoless double beta decay [76], even though mediated by different interactions, strong and weak, respectively. Furthermore, in Reference [77], a hypothesis of linear correlation between double charge exchange reaction and neutrinoless double beta decay NMEs was suggested. This hypothesis was further studied in Reference [78], where a correlation between the 0 ν β β decay nuclear matrix element and DCE nuclear matrix element in IBM-2 for cases 76 Ge, 82 Se, 116 Cd, and 128 Te was found. In particular, linear dependence for GT NMEs was found to be [78]
M G T 0 ν β β = 0.07 + 1.36 M T , G T D C E ,
where M T , G T D C E refers to matrix elements for the target. In these DCE calculations, SPEs of set (II) were used and thus the comparison was made with IBM-2 0 ν β β decay NMEs from [71]. However, the linear dependence can also be found for updated single-particle energies and change in constant coefficients is anticipated to be very mild. When finding the constant coefficients, the important thing is to use the same SPEs in both calculations, DBD and DCE, in order to avoid unnecessary uncertainty coming from different input parameters.

6. Conclusions

In this article, the impact of using different values of the SPEs on pair structure coefficients, crucial for IBM-2 description of double beta decay, was discussed, and specific results of 0 ν β β decay nuclear matrix elements, including their connection to double charge exchange reaction nuclear matrix elements, were considered. The single-particle energies may be considered as input parameters to be fitted to reach an optimal correspondence with the data, or alternatively they can be calculated using a mean field potential, or they can be extracted from available experimental data, as has become customary in the connection of IBM-2 wave functions.The observed increase of the 0 ν β β decay IBM-2 matrix elements can be explained by the changes in the single-particle energies. In those cases where the updated single-particle energies are generally decreased and compressed compared to the previous set, generally larger values for the pair structure coefficients α and β of the S and D pairs are produced. This then leads to larger NMEs, especially when (1) both proton and neutron single-particle energies are affected and (2) the number of valence particles outside closed shells is high.

Funding

This research was funded by the Academy of Finland, Grant No. 314733, 320062.

Institutional Review Board Statement

Not applicable.

Informed Consent Statement

Not applicable.

Conflicts of Interest

The author declares no conflict of interest.

References

  1. Anton, G.; Badhrees, I.; Barbeau, P.S.; Beck, D.; Belov, V.; Bhatta, T.; Breidenbach, M.; Brunner, T.; Cao, G.F.; Cen, W.R.; et al. (EXO-200 Collaboration). Search for Neutrinoless Double-β Decay with the Complete EXO-200 Dataset. Phys. Rev. Lett. 2019, 123, 161802. [Google Scholar] [CrossRef] [Green Version]
  2. Adams, D.Q.; Alduino, C.; Alfonso, K.; Avignone, F.T., III; Azzolini, O.; Bari, G.; Bellini, F.; Benato, G.; Biassoni, M.; Branca, A.; et al. (CUORE Collaboration). Improved Limit on Neutrinoless Double-Beta Decay in Te-130 with CUORE. Phys. Rev. Lett. 2020, 124, 122501. [Google Scholar] [CrossRef] [PubMed] [Green Version]
  3. Gando, A.; Gando, A.; Gando, Y.; Hachiya, T.; Hayashi, A.; Hayashida, S.; Ikeda, H.; Inoue, K.; Ishidoshiro, K.; Karino, Y.; et al. (KamLANDZen Collaboration). Search for Majorana Neutrinos Near the Inverted Mass Hierarchy Region with KamLAND-Zen. Phys. Rev. Lett. 2016, 117, 082503. [Google Scholar] [CrossRef] [Green Version]
  4. Agostini, M.; Araujo, G.R.; Bakalyarov, A.M.; Balata, M.; Barabanov, I.; Baudis, L.; Bauer, C.; Bellotti, E.; Belogurov, S.; Bettini, A.; et al. (GERDA Collaboration). Final Results of GERDA on the Search for Neutrinoless Double-β Decay. Phys. Rev. Lett. 2020, 125, 252502. [Google Scholar] [CrossRef]
  5. Haxton, W.C.; Stephenson, G.J., Jr. Double beta decay. Prog. Part. Nucl. Phys. 1984, 12, 409. [Google Scholar] [CrossRef]
  6. Doi, M.; Kotani, T.; Takasugi, E. Double beta Decay and Majorana Neutrino. Prog. Theor. Phys. Suppl. 1985, 83, 1. [Google Scholar] [CrossRef] [Green Version]
  7. Mohapatra, R.N. New Contributions to Neutrinoless Double beta Decay in Supersymmetric Theories. Phys. Rev. D 1986, 34, 3457. [Google Scholar] [CrossRef] [PubMed]
  8. Vergados, J.D. Neutrinoless double β-decay without Majorana neutrinos in supersymmetric theories. Phys. Lett. B 1987, 184, 55. [Google Scholar] [CrossRef]
  9. Tomoda, T. Double beta decay. Rep. Prog. Phys. 1991, 54, 53. [Google Scholar] [CrossRef]
  10. Morales, A. Review on double beta decay experiments and comparison with theory. Nucl. Phys. B Proc. Suppl. 1999, 77, 335. [Google Scholar] [CrossRef] [Green Version]
  11. Avignone, F.T., III; Elliott, S.R.; Engel, J. Double beta decay, Majorana neutrinos, and neutrino mass. Rev. Mod. Phys. 2008, 80, 481. [Google Scholar] [CrossRef] [Green Version]
  12. Kotila, J.; Iachello, F. Phase-space factors for double-β decay. Phys. Rev. C 2012, 85, 034316. [Google Scholar] [CrossRef] [Green Version]
  13. Barabash, A.S. Average and recommended half-life values for two-neutrino double beta decay: Upgrade-2019. AIP Conf. Proc. 2019, 2165, 020002. [Google Scholar]
  14. Paes, B.; Santagati, G.; Vsevolodovna, R.M.; Cappuzzello, F.; Carbone, D.; Cardozo, E.N.; Cavallaro, M.; García-Tecocoatzi, H.; Gargano, A.; Ferreira, J.L.; et al. Long-range versus short-range correlations in the two-neutron transfer reaction 64Ni(18O,16O)66Ni. Phys. Rev. C 2017, 96, 044612. [Google Scholar] [CrossRef] [Green Version]
  15. Freeman, S.J.; Schiffer, J.P. Constraining the 0ν2β matrix elements by nuclear structure observables. J. Phys. G 2012, 39, 124004. [Google Scholar] [CrossRef] [Green Version]
  16. Kay, B.P.; Bloxham, T.; McAllister, S.A.; Clark, J.A.; Deibel, C.M.; Freedman, S.J.; Freeman, S.J.; Han, K.; Howard, A.M.; Mitchell, A.J.; et al. Valence neutron properties relevant to the neutrinoless double-β decay of 130Te. Phys. Rev. C 2013, 87, 011302. [Google Scholar] [CrossRef] [Green Version]
  17. Entwisle, J.P.; Kay, B.P.; Tamii, A.; Adachi, S.; Aoi, N.; Clark, J.A.; Freeman, S.J.; Fujita, H.; Fujita, Y.; Furuno, T.; et al. Change of nuclear configurations in the neutrinoless double-β decay of 130Te→130Xe and 136Xe→136Ba. Phys. Rev. C 2016, 93, 064312. [Google Scholar] [CrossRef] [Green Version]
  18. Szwec, S.V.; Kay, B.P.; Cocolios, T.E.; Entwisle, J.P.; Freeman, S.J.; Gaffney, L.P.; Guimarães, V.; Hammache, F.; McKee, P.P.; Parr, E.; et al. Rearrangement of valence neutrons in the neutrinoless double-β decay of 136Xe. Phys. Rev. C 2016, 94, 054314. [Google Scholar] [CrossRef] [Green Version]
  19. Schiffer, J.P.; Freeman, S.J.; Clark, J.A.; Deibel, C.; Fitzpatrick, C.R.; Gros, S.; Heinz, A.; Hirata, D.; Jiang, C.L.; Kay, B.P.; et al. Nuclear structure relevant to neutrinoless double β decay: 76Ge and 76Se. Phys. Rev. Lett. 2008, 100, 112501. [Google Scholar] [CrossRef] [Green Version]
  20. Kay, B.P.; Schiffer, J.P.; Freeman, S.J.; Adachi, T.; Clark, J.A.; Deibel, C.M.; Fujita, H.; Fujita, Y.; Grabmayr, P.; Hatanaka, K.; et al. Nuclear structure relevant to neutrinoless double β decay: The valence protons in 76Ge and 76Se. Phys. Rev. C. 2009, 79, 021301. [Google Scholar] [CrossRef] [Green Version]
  21. Ejiri, H.; Suhonen, J.; Zuber, K. Neutrino nuclear responses for astro-neutrinos, single β-decays, and double β-decays. Phys. Rep. 2019, 797, 1–102. [Google Scholar] [CrossRef]
  22. Ejiri, H.; Richard, P.; Ferguson, S.; Heffner, R.; Perry, D. Electric dipole transition from the f7/2 isobaric analogue state to the 2d5/2 ground state in 141Pr. Phys. Rev. Lett. 1968, 21, 373–376. [Google Scholar] [CrossRef]
  23. Ejiri, H.; Titov, A.; Bosewell, M.; Yang, A. Neutrino nuclear response and photonuclear reactions. Phys. Rev. C 2013, 88, 054610. [Google Scholar] [CrossRef] [Green Version]
  24. Jokiniemi, L.; Suhonen, J. Muon-capture strength functions in intermediate nuclei of 0νββ decays. Phys. Rev. C 2019, 100, 014619. [Google Scholar] [CrossRef] [Green Version]
  25. Jokiniemi, L.; Suhonen, J. Comparative analysis of muon capture and 0νββ decay matrix elements. Phys. Rev. C 2020, 102, 024303. [Google Scholar] [CrossRef]
  26. Jokiniemi, L.; Kotila, J.; Suhonen, J. Comparative Analysis of Nuclear Matrix Elements of 0νβ+β+ Decay and Muon Capture in 106Cd. Front. Phys. 2021. accepted. [Google Scholar]
  27. Cirigliano, V.; Gardner, S.; Holstein, B. Beta decays and non-standard interactions in the LHC era. Prog. Part. Nucl. Phys. 2013, 71, 93. [Google Scholar] [CrossRef] [Green Version]
  28. Kostensalo, J.; Suhonen, J. gA-driven shapes of electron spectra of forbidden β decays in the nuclear shell model. Phys. Rev. C 2017, 96, 024317. [Google Scholar] [CrossRef] [Green Version]
  29. Yoshida, N.; Iachello, F. Two neutrino double-β decay in the interacting boson-fermion model. Prog. Theor. Exp. Phys. 2013, 2013, 043D01. [Google Scholar] [CrossRef] [Green Version]
  30. Barea, J.; Kotila, J.; Iachello, F. 0νββ and 2νββ nuclear matrix elements in the interacting boson model with isospin restoration. Phys. Rev. C 2015, 91, 034304. [Google Scholar] [CrossRef] [Green Version]
  31. Barabash, A.S. Average and recommended half-life values for two-neutrino double beta decay. Nucl. Phys. A 2015, 935, 52. [Google Scholar] [CrossRef] [Green Version]
  32. Horoi, M.; Neacsu, A. Shell model predictions for 124Sn double-β decay. Phys. Rev. C 2016, 93, 024308. [Google Scholar] [CrossRef] [Green Version]
  33. Suhonen, J.; Civitarese, O. Double-beta-decay nuclear matrix elements in the QRPA framework. J. Phys. G 2012, 39, 085105. [Google Scholar] [CrossRef]
  34. Rodin, V.A.; Faessler, A.; Šimkovic, F.; Vogel, P. Assessment of uncertainties in QRPA 0νββ-decay nuclear matrix elements. Nucl. Phys. A 2006, 766, 107. [Google Scholar]
  35. Caurier, E.; Poves, A.; Zuker, A.P. A full 0ℏω description of the 2νββ decay of 48Ca. Phys. Lett. B 1990, 252, 13. [Google Scholar] [CrossRef]
  36. Ichimura, M.; Sakai, H.; Wakasa, T. Spin-isospin responses via (p, n) and (n, p) reactions. Prog. Part. Nucl. Phys. 2006, 56, 446. [Google Scholar] [CrossRef]
  37. Freckers, D.; Puppe, P.; Thies, J.H.; Ejiri, H. Gamow-Teller strength extraction from (3He,t) reactions. Nucl. Phys. A 2013, 916, 219. [Google Scholar] [CrossRef]
  38. Yako, K.; Sasano, M.; Miki, K.; Sakai, H.; Dozono, M.; Frekers, D.; Greenfield, M.B.; Hatanaka, K.; Ihara, E.; Kato, M.; et al. Gamow-Teller Strength Distributions in 48Sc by the 48Ca(p, n) and 48Ti(n, p) Reactions and Two-Neutrino Double-β Decay Nuclear Matrix Elements. Phys. Rev. Lett. 2009, 103, 012503. [Google Scholar] [CrossRef]
  39. Suhonen, J.; Civitarese, O. Probing the quenching of gA by single and double beta decays. Phys. Lett. B 2013, 725, 153. [Google Scholar] [CrossRef] [Green Version]
  40. Caurier, E.; Nowacki, F.; Poves, A. Shell Model description of the ββ decay of 136Xe. Phys. Lett. B 2012, 711, 62. [Google Scholar] [CrossRef] [Green Version]
  41. Rodríguez, T.R.; Martínez-Pinedo, G. Neutrinoless double beta decay studied with configuration mixing methods. Prog. Part. Nucl. Phys. 2011, 66, 436. [Google Scholar] [CrossRef] [Green Version]
  42. Bertulani, C.A. Heavy-ion charge exchange in the eikonal approximation. Nucl. Phys. A 1993, 554, 493. [Google Scholar] [CrossRef]
  43. Lenske, H. Theory of heavy ion charge exchange scattering at low and intermediate energies. Nucl. Phys. A 1988, 482, 343. [Google Scholar] [CrossRef]
  44. Vergados, J.D. Pion-double-charge-exchange contribution to neutrinoless double-β decay. Phys. Rev. D 1982, 25, 914. [Google Scholar] [CrossRef]
  45. Fazely, A.; Liu, L.C. Neutrinoless Double-β Decay and Its Relation to Pion Double Charge Exchange. Phys. Rev. Lett. 1986, 57, 968. [Google Scholar] [CrossRef]
  46. Mordechai, S.; Auerbach, N.; Burlein, M.; Fortune, H.T.; Greene, S.J.; Moore, C.F.; Morris, C.L.; O’Donnell, J.M.; Rawool, M.W.; Silk, J.D.; et al. Pion Double Charge Exchange to the Double Dipole Resonance. Phys. Rev. Lett. 1988, 61, 531. [Google Scholar] [CrossRef]
  47. Moreno, O.; Moya de Guerra, E.; Sarriguren, P.; Faessler, A. Theoretical mean-field and experimental occupation probabilities in the double-β decay system 76Ge to 76Se. Phys. Rev. C 2019, 81, 041303. [Google Scholar] [CrossRef] [Green Version]
  48. Suhonen, J.; Civitarese, O. Single and double beta decays in the A=100, A=116 and A=128 triplets of isobars. Nucl. Phys. A 2014, 924, 1. [Google Scholar] [CrossRef]
  49. Neacsu, A.; Horoi, M. Shell model studies of the 130Te neutrinoless double-β decay. Phys. Rev. C 2015, 91, 024309. [Google Scholar] [CrossRef] [Green Version]
  50. Kotila, J.; Barea, J. Occupation probabilities of single particle levels using the microscopic interacting boson model: Application to some nuclei of interest in neutrinoless double-β decay. Phys. Rev. C 2016, 94, 034320. [Google Scholar] [CrossRef] [Green Version]
  51. Arima, A.; Iachello, F. Interacting boson model of collective states. 1. The Vibrational limit. Ann. Phys. 1976, 99, 253–317. [Google Scholar] [CrossRef]
  52. Arima, A.; Iachello, F. Interacting boson model of collective nuclear states. II. The rotational limit. Ann. Phys. 1978, 111, 201–238. [Google Scholar] [CrossRef]
  53. Arima, A.; Iachello, F. Interacting boson model of collective nuclear states. 4. The O(6) limit. Ann. Phys. 1979, 123, 468–492. [Google Scholar] [CrossRef]
  54. Arima, A.; Ohtsuka, T.; Iachello, F.; Talmi, I. Collective nuclear states as symmetric couplings of proton and neutron excitations. Phys. Lett. B 1977, 66, 205–208. [Google Scholar] [CrossRef] [Green Version]
  55. Otsuka, T.; Arima, A.; Iachello, F.; Talmi, I. Shell model description of interacting bosons. Phys. Lett. A 1978, 76, 139–143. [Google Scholar] [CrossRef] [Green Version]
  56. Otsuka, T.; Arima, A.; Iachello, F. Nuclear shell model and interacting bosons. Nucl. Phys. A 1978, 309, 1–33. [Google Scholar] [CrossRef]
  57. Barea, J.; Iachello, F. Neutrinoless double- β decay in the microscopic interacting boson model. Phys. Rev. C 2009, 79, 044301. [Google Scholar] [CrossRef]
  58. Talmi, I. Generalized seniority and structure of semi-magic nuclei. Nucl. Phys. A 1971, 172, 1. [Google Scholar] [CrossRef]
  59. Klein, A.; Valliéres, M. New method for studying the microscopic foundations of the interacting boson model. Phys. Lett. B 1981, 98, 5. [Google Scholar] [CrossRef]
  60. Scholten, O. Microscopic calculations for the interacting boson model. Phys. Rev. C 1983, 28, 1783. [Google Scholar] [CrossRef]
  61. Scholten, O. Single particle degrees of freedom in the interacting boson model. Prog. Part. Nucl. Phys. 1985, 14, 189. [Google Scholar] [CrossRef]
  62. Yoshinaga, N.; Mizusaki, T.; Arima, A.; Devi, Y.D. Microscopic foundations of the interacting boson Model from the shell-model point of view. Prog. Theor. Phys. Suppl. 1996, 125, 65. [Google Scholar] [CrossRef]
  63. Pittel, S.; Duval, P.D.; Barrett, B.R. The microscopic Interacting Boson Model for nondegenerate orbits. Ann. Phys. 1982, 144, 168–199. [Google Scholar] [CrossRef]
  64. Frank, A.; Van Isacker, P. Commutator algebra for the microscopic interacting boson model with nondegenerate orbits. Phys. Rev. C 1982, 26, 1661. [Google Scholar] [CrossRef]
  65. Lipas, P.O.; Koskinen, M.; Harter, H.; Nojarov, R.; Faessler, A. Microscopic IBA calculations of (e,e) M1 form factors. Nucl. Phys. A 1990, 509, 509–540. [Google Scholar] [CrossRef]
  66. Engel, J. Uncertainties in nuclear matrix elements for neutrinoless double-beta decay. J. Phys. G Nucl. Part. Phys. 2015, 42, 034017. [Google Scholar] [CrossRef]
  67. Baldridge, W.J. Shell-model studies for the 132Sn region. I. Few proton cases. Phys. Rev. C 1978, 18, 530. [Google Scholar] [CrossRef]
  68. Suhonen, J. From Nucleons to Nucleus. Concepts of Microscopic Nuclear Theory; Springer: Berlin/Heidelberg, Germany, 2007. [Google Scholar]
  69. Šimkovic, F.; Faessler, A.; Müther, H.; Rodin, V.; Stauf, M. 0νββ-decay nuclear matrix elements with self-consistent short-range correlations. Phys Rev C. 2009, 79, 055501. [Google Scholar] [CrossRef] [Green Version]
  70. Deppisch, F.F.; Graf, L.; Iachello, F.; Kotila, J. Analysis of light neutrino exchange and short-range mechanisms in 0νββ decay. Phys. Rev. D 2020, 102, 095016. [Google Scholar] [CrossRef]
  71. Barea, J.; Kotila, J.; Iachello, F. Nuclear matrix elements for double-β decay. Phys. Rev. C 2013, 87, 014315. [Google Scholar] [CrossRef] [Green Version]
  72. Šimkovic, F.; Rodin, V.; Faessler, A.; Vogel, P. 0νββ and 2νββ nuclear matrix elements, quasiparticle random-phase approximation, and isospin symmetry restoration. Phys. Rev. C. 2013, 87, 045501. [Google Scholar] [CrossRef] [Green Version]
  73. Hyvärinen, J.; Suhonen, J. Nuclear matrix elements for 0ββ decays with light or heavy Majorana-neutrino exchange. Phys. Rev. C. 2015, 91, 024613. [Google Scholar] [CrossRef]
  74. Fang, D.L.; Faessler, A.; Šimkovic, F. 0νββ-decay nuclear matrix element for light and heavy neutrino mass mechanisms from deformed quasiparticle random-phase approximation calculations for 76Ge, 82Se, 130Te, 136Xe, and 150Nd with isospin restoration. Phys. Rev. C. 2018, 97, 045503. [Google Scholar] [CrossRef] [Green Version]
  75. Menéndez, J. Neutrinoless ββ decay mediated by the exchange of light and heavy neutrinos: The role of nuclear structure correlations. J. Phys. G Nucl. Part. Phys. 2018, 45, 014003. [Google Scholar] [CrossRef] [Green Version]
  76. Cappuzzello, F.; Cavallaro, M.; Agodi, C.; Bondi, M.; Carbone, D.; Cunsolo, A.; Foti, A. Heavy-ion double charge exchange reactions: A tool toward 0νββ nuclear matrix elements. Eur. Phys. J. A 2015, 51, 145. [Google Scholar] [CrossRef] [Green Version]
  77. Shimizu, N.; Menéndez, J.; Yako, K. Double Gamow-Teller Transitions and its Relation to Neutrinoless Decay. Phys. Rev. Lett. 2018, 120, 142502. [Google Scholar] [CrossRef] [Green Version]
  78. Santopinto, E.; García-Tecocoatzi, H.; Magaña Vsevolodovna, R.I.; Ferretti, J. (NUMEN Collaboration). Heavy-ion double-charge-exchange and its relation to neutrinoless double-β decay. Phys. Rev. C 2018, 98, 061601. [Google Scholar] [CrossRef] [Green Version]
Table 1. Considered energies of proton single-particle orbitals and A 1 isovector surface delta interaction (SDI) strength parameters in MeV in the 28-50 shell (set (I) [50], set (II) [57]).
Table 1. Considered energies of proton single-particle orbitals and A 1 isovector surface delta interaction (SDI) strength parameters in MeV in the 28-50 shell (set (I) [50], set (II) [57]).
OrbitalProtons (I)
(Particles)
A 76 , 82
A 1 = 0.299
Protons (II)
(Particles)

A 1 = 0.366
Protons (I)
(Holes)
A 100 , 116
A 1 = 0.239
Protons (II)
(Holes)

A 1 = 0.264
2 p 1 / 2 1.1791.1060.6780.931
2 p 3 / 2 0.0000.0001.1072.198
1 f 5 / 2 0.3401.0281.5182.684
1 g 9 / 2 2.6403.0090.0000.000
Table 2. Considered energies of neutron single-particle orbitals and A 1 isovector SDI strength parameters in MeV in the 28-50 shell (set (I) [50], set (II) [57]).
Table 2. Considered energies of neutron single-particle orbitals and A 1 isovector SDI strength parameters in MeV in the 28-50 shell (set (I) [50], set (II) [57]).
OrbitalNeutrons (I)
(Holes)
A 76 , 82
A 1 = 0.237
Neutrons (II)
(Holes)

A 1 = 0.280
2 p 1 / 2 0.5881.896
2 p 3 / 2 1.0953.009
1 f 5 / 2 1.4512.240 0
1 g 9 / 2 0.0000.000
Table 3. Considered energies of proton single-particle orbitals and A 1 isovector SDI strength parameters in MeV in the 50-82 shell (set (I) [50], set (II) [57]).
Table 3. Considered energies of proton single-particle orbitals and A 1 isovector SDI strength parameters in MeV in the 50-82 shell (set (I) [50], set (II) [57]).
OrbitalProtons (I)
(Particles)
A 128 , 130 , 136
A 1 = 0.222
Protons (II)
(Particles)

A 1 = 0.221
3 s 1 / 2 2.9902.990
2 d 3 / 2 2.4402.690
2 d 5 / 2 0.9620.960
1 g 7 / 2 0.0000.000
1 h 11 / 2 2.7922.760
Table 4. Considered energies of neutron single-particle orbitals and A 1 isovector SDI strength parameters in MeV in the 50-82 shell (set (I) [50], set (II) [57]).
Table 4. Considered energies of neutron single-particle orbitals and A 1 isovector SDI strength parameters in MeV in the 50-82 shell (set (I) [50], set (II) [57]).
OrbitalNeutrons (I)
(Particles)
A 100 , 116
A 1 = 0.242
Neutrons (II)
(Particles)

A 1 = 0.269
Neutrons (I)
(Holes)
A 128 , 130 , 136
A 1 = 0.163
Neutrons (II)
(Holes)

A 1 = 0.163
3 s 1 / 2 0.7751.2050.3320.332
2 d 3 / 2 1.1422.0420.0000.000
2 d 5 / 2 0.0000.0001.6541.655
1 g 7 / 2 0.1722.2002.4342.434
1 h 11 / 2 2.8682.1700.0690.070
Table 5. Obtained pair structure coefficients with different single-particle energies given in Table 1 for protons of the 28-50 shell.
Table 5. Obtained pair structure coefficients with different single-particle energies given in Table 1 for protons of the 28-50 shell.
Protons (I)
(Particles)
A 76 , 82
Protons (II)
(Particles)
Protons (I)
(Holes)
A 100 , 116
Protons (II)
(Holes)
α 1 / 2 −0.701−0.8500.7650.689
α 3 / 2 −1.650−1.8670.6020.408
α 5 / 2 −1.187−0.8840.5000.352
α 9 / 2 0.4090.439−1.337−1.401
β 1 / 23 / 2 −0.742−0.322−0.149−0.092
β 3 / 23 / 2 −0.280−0.866−0.088−0.048
β 1 / 25 / 2 −0.280−0.234−0.154−0.099
β 3 / 25 / 2 0.3810.2220.0710.040
β 5 / 25 / 2 −0.373−0.182−0.088−0.052
β 9 / 29 / 2 0.0960.0930.9660.988
Table 6. Obtained pair structure coefficients with different single-particle energies given in Table 2 for neutrons of the 28-50 shell.
Table 6. Obtained pair structure coefficients with different single-particle energies given in Table 2 for neutrons of the 28-50 shell.
Neutrons (I)
(Holes)
A 76 , 82
Neutrons (II)
(Holes)
α 1 / 2 0.8070.468
α 3 / 2 0.6030.336
α 5 / 2 0.5120.418
α 9 / 2 −1.329−1.416
β 1 / 23 / 2 −0.157−0.063
β 3 / 23 / 2 −0.089−0.037
β 1 / 25 / 2 −0.164−0.091
β 3 / 25 / 2 0.0730.039
β 5 / 25 / 2 −0.092−0.064
β 9 / 29 / 2 0.9630.990
Table 7. Obtained pair structure coefficients with different single-particle energies given in Table 3 for protons of the 50-82 shell.
Table 7. Obtained pair structure coefficients with different single-particle energies given in Table 3 for protons of the 50-82 shell.
Protons (I)
(Particles)
A 128 , 130 , 136
Protons (II)
(Particles)
α 1 / 2 0.3840.382
α 3 / 2 0.4490.414
α 5 / 2 0.8180.817
α 7 / 2 1.7651.769
α 11 / 2 −0.405−0.406
β 1 / 23 / 2 −0.058−0.054
β 3 / 23 / 2 0.0450.040
β 1 / 25 / 2 0.0940.092
β 3 / 25 / 2 0.0580.053
β 5 / 25 / 2 0.1340.131
β 3 / 27 / 2 0.1900.170
β 5 / 27 / 2 −0.133−0.131
β 7 / 27 / 2 0.9510.957
β 11 / 211 / 2 −0.076−0.075
Table 8. Obtained pair structure coefficients with different single-particle energies given in Table 4 for neutrons of the 50-82 shell.
Table 8. Obtained pair structure coefficients with different single-particle energies given in Table 4 for neutrons of the 50-82 shell.
Neutrons (I)
(Particles)
A 100 , 116
Neutrons (II)
(Particles)
Neutrons (I)
(Holes)
A 128 , 130 , 136
Neutrons (II)
(Holes)
α 1 / 2 0.8880.852−0.998−0.999
α 3 / 2 0.7490.614−1.394−1.395
α 5 / 2 1.4631.921−0.469−0.469
α 7 / 2 1.2800.584−0.357−0.357
α 11 / 2 −0.431−0.589−1.2881.287
β 1 / 23 / 2 −0.193−0.118−0.402−0.402
β 3 / 23 / 2 0.1210.0680.4900.492
β 1 / 25 / 2 0.3950.3240.1590.159
β 3 / 25 / 2 0.1730.1150.0980.098
β 5 / 25 / 2 0.5500.8990.0780.078
β 3 / 27 / 2 0.3920.1490.1760.176
β 5 / 27 / 2 −0.267−0.088−0.037−0.037
β 7 / 27 / 2 0.4720.0980.0650.065
β 11 / 211 / 2 −0.111−0.124−0.722−0.721
Table 9. Light neutrino exchange nuclear matrix elements for selected nuclei calculated with set (I) single-particle energies (SPEs) [70] (new) and with set (II) [30] (old) using g A = 1.0 and the convention M ν > 0 . The “old” Fermi, Gamow–Teller, and tensor nuclear matrix elements (NMEs) are combined in the NMEs M ˜ ν old using the negative sign of the tensor NME relative to that of the G T NME (in contrary to [30], where a positive sign was used). All NMEs are in dimensionless units.
Table 9. Light neutrino exchange nuclear matrix elements for selected nuclei calculated with set (I) single-particle energies (SPEs) [70] (new) and with set (II) [30] (old) using g A = 1.0 and the convention M ν > 0 . The “old” Fermi, Gamow–Teller, and tensor nuclear matrix elements (NMEs) are combined in the NMEs M ˜ ν old using the negative sign of the tensor NME relative to that of the G T NME (in contrary to [30], where a positive sign was used). All NMEs are in dimensionless units.
Isotope M F old M GT old M T old M ˜ ν old M F M GT M T M ν
76 Ge 0.68 4.49 0.23 5.40 0.78 5.58 0.28 6.64
82 Se 0.60 3.59 0.23 4.42 0.67 4.52 0.27 5.46
100 Mo 0.48 3.73 0.19 4.02 0.51 5.08 0.32 5.27
116 Cd 0.33 2.76 0.14 2.95 0.34 2.89 0.12 3.11
128 Te 0.72 3.80 0.15 4.67 0.72 3.97 0.12 4.80
130 Te 0.65 3.43 0.13 4.21 0.65 3.59 0.16 4.40
136 Xe 0.52 2.83 0.10 3.45 0.52 2.96 0.12 3.60
Publisher’s Note: MDPI stays neutral with regard to jurisdictional claims in published maps and institutional affiliations.

Share and Cite

MDPI and ACS Style

Kotila, J. Role of Single-Particle Energies in Microscopic Interacting Boson Model Double Beta Decay Calculations. Universe 2021, 7, 66. https://doi.org/10.3390/universe7030066

AMA Style

Kotila J. Role of Single-Particle Energies in Microscopic Interacting Boson Model Double Beta Decay Calculations. Universe. 2021; 7(3):66. https://doi.org/10.3390/universe7030066

Chicago/Turabian Style

Kotila, Jenni. 2021. "Role of Single-Particle Energies in Microscopic Interacting Boson Model Double Beta Decay Calculations" Universe 7, no. 3: 66. https://doi.org/10.3390/universe7030066

Note that from the first issue of 2016, this journal uses article numbers instead of page numbers. See further details here.

Article Metrics

Back to TopTop