Renormalizability of the leading order operator for neutrinoless double beta decay with the effects of finite nucleon size

Fuente: arXiv
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Autori principali: Liu, Tai-Xing, Huang, Ri-Guang, Fang, Dong-Liang
Natura: Preprint
Pubblicazione: 2024
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author Liu, Tai-Xing
Huang, Ri-Guang
Fang, Dong-Liang
author_facet Liu, Tai-Xing
Huang, Ri-Guang
Fang, Dong-Liang
contents The fundamental process of neutrinoless double beta decay, $nn\to ppe^-e^-$, dominated by the exchange of light Majorana neutrinos, is studied in the framework of chiral effective field theory. Considering neutrinos as virtual states, we evaluate the contributions of finite nucleon size to the transition amplitude in a non-perturbative manner, as opposed to expanding these effects in powers of momentum. Based on the nucleon form factors expressed in terms of the dipole and Kelly parametrizations, we find that, at the leading order, the present scheme could renormalize the amplitude in the context of the standard mechanism and provide predictions consistent with the previous investigations. Consequently, we argue that the impact of the effects of finite nucleon size on the amplitude is comparable to that of the leading-order contact term introduced in [Phys. Rev. Lett.120, 202001(2018)] in a perturbative scheme. Our results provide not only a benchmark calculation for the transition amplitude between two schemes but also evidence for the reasonableness of non-perturbative treatment for the effects of finite nucleon size in conventional nuclear many-body methods.
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id arxiv_https___arxiv_org_abs_2405_10503
institution arXiv
publishDate 2024
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spellingShingle Renormalizability of the leading order operator for neutrinoless double beta decay with the effects of finite nucleon size
Liu, Tai-Xing
Huang, Ri-Guang
Fang, Dong-Liang
Nuclear Theory
High Energy Physics - Phenomenology
The fundamental process of neutrinoless double beta decay, $nn\to ppe^-e^-$, dominated by the exchange of light Majorana neutrinos, is studied in the framework of chiral effective field theory. Considering neutrinos as virtual states, we evaluate the contributions of finite nucleon size to the transition amplitude in a non-perturbative manner, as opposed to expanding these effects in powers of momentum. Based on the nucleon form factors expressed in terms of the dipole and Kelly parametrizations, we find that, at the leading order, the present scheme could renormalize the amplitude in the context of the standard mechanism and provide predictions consistent with the previous investigations. Consequently, we argue that the impact of the effects of finite nucleon size on the amplitude is comparable to that of the leading-order contact term introduced in [Phys. Rev. Lett.120, 202001(2018)] in a perturbative scheme. Our results provide not only a benchmark calculation for the transition amplitude between two schemes but also evidence for the reasonableness of non-perturbative treatment for the effects of finite nucleon size in conventional nuclear many-body methods.
title Renormalizability of the leading order operator for neutrinoless double beta decay with the effects of finite nucleon size
topic Nuclear Theory
High Energy Physics - Phenomenology
url https://arxiv.org/abs/2405.10503