ÚTEFČVUT Ústav technické a experimentální fyziky ČVUT v PrazeInstitute of Experimental and Applied Physics, CTU in Prague

Estimation of nuclear matrix elements of double-β decay from shell model and quasiparticle random-phase approximation

NázevTitle
Estimation of nuclear matrix elements of double-β decay from shell model and quasiparticle random-phase approximationEstimation of nuclear matrix elements of double-β decay from shell model and quasiparticle random-phase approximation
Druh výsledkuResult type
Článek v časopiseJournal article
AutořiAuthors
J. Terasaki, Y. Iwata
Klíčová slovaKeywords
neutrinoless double beta decay, nuclear matrix element, shell model, Quasiparticle Random-Phase Approximation, charge-change strength function
DOIDOI
10.1140/epjp/s13360-021-01886-y
Časopis / citaceJournal / citation
The European Physical Journal Plus 136(9), 908 (2021) · ISSN 2190-5444
RokYear
2021
JazykLanguage
eng
ZáznamyRecords
ProjektProject
Inženýrské aplikace fyziky mikrosvětaEngineering applications of microworld physics
CitovánoCited by
9 (INSPIRE-HEP)
2021: 12022: 02023: 32024: 12025: 32026: 1
Plný text (open access)Full text (open access)
https://link.springer.com/content/pdf/10.1140/epjp/s13360-021-01886-y.pdf
Citace ke staženíDownload citation
TXT · BibTeX

AbstraktAbstract

The nuclear matrix element (NME) of neutrinoless double-β (0νββ) decay is an essential input for determining the neutrino effective mass, if the half-life of this decay is measured. Reliable calculation of this NME has been a long-standing problem because of the diversity of the predicted values of the NME, which depends on the calculation method. In this study, we focus on the shell model and the QRPA. The shell model has a rich amount of the many-particle many-hole correlations, and the quasiparticle random-phase approximation (QRPA) can obtain the convergence of the calculation results with respect to the extension of the single-particle space. It is difficult for the shell model to obtain the convergence of the 0νββ NME with respect to the valence single-particle space. The many-body correlations of the QRPA may be insufficient, depending on the nuclei. We propose a new method to phenomenologically modify the results of the shell model and the QRPA compensating for the insufficiencies of each method using the information of other methods in a complementary manner. Extrapolations of the components of the 0νββ NME of the shell model are made toward a very large valence single-particle space. We introduce a modification factor to the components of the 0νββ NME of the QRPA. Our modification method yields similar values of the 0νββ NME for the two methods with respect to 48Ca. The NME of the two-neutrino double-β decay is also modified in a similar but simpler manner, and the consistency of the two methods is improved.

The nuclear matrix element (NME) of neutrinoless double-β (0νββ) decay is an essential input for determining the neutrino effective mass, if the half-life of this decay is measured. Reliable calculation of this NME has been a long-standing problem because of the diversity of the predicted values of the NME, which depends on the calculation method. In this study, we focus on the shell model and the QRPA. The shell model has a rich amount of the many-particle many-hole correlations, and the quasiparticle random-phase approximation (QRPA) can obtain the convergence of the calculation results with respect to the extension of the single-particle space. It is difficult for the shell model to obtain the convergence of the 0νββ NME with respect to the valence single-particle space. The many-body correlations of the QRPA may be insufficient, depending on the nuclei. We propose a new method to phenomenologically modify the results of the shell model and the QRPA compensating for the insufficiencies of each method using the information of other methods in a complementary manner. Extrapolations of the components of the 0νββ NME of the shell model are made toward a very large valence single-particle space. We introduce a modification factor to the components of the 0νββ NME of the QRPA. Our modification method yields similar values of the 0νββ NME for the two methods with respect to 48Ca. The NME of the two-neutrino double-β decay is also modified in a similar but simpler manner, and the consistency of the two methods is improved.

↑ NahoruTop