Exploding operators for Majorana neutrino masses and beyond

Abstract Building UV completions of lepton-number-violating effective operators has proved to be a useful way of studying and classifying models of Majorana neutrino mass. In this paper we describe and implement an algorithm that systematises this model-building procedure. We use the algorithm to ge...

Full description

Bibliographic Details
Main Authors: John Gargalionis, Raymond R. Volkas
Format: Article
Language:English
Published: SpringerOpen 2021-01-01
Series:Journal of High Energy Physics
Subjects:
Online Access:https://doi.org/10.1007/JHEP01(2021)074
id doaj-afa914a31e0c4a2a80c5e17e1e5ec230
record_format Article
spelling doaj-afa914a31e0c4a2a80c5e17e1e5ec2302021-01-17T12:07:13ZengSpringerOpenJournal of High Energy Physics1029-84792021-01-012021117410.1007/JHEP01(2021)074Exploding operators for Majorana neutrino masses and beyondJohn Gargalionis0Raymond R. Volkas1ARC Centre of Excellence for Particle Physics at the Terascale, School of Physics, The University of MelbourneARC Centre of Excellence for Particle Physics at the Terascale, School of Physics, The University of MelbourneAbstract Building UV completions of lepton-number-violating effective operators has proved to be a useful way of studying and classifying models of Majorana neutrino mass. In this paper we describe and implement an algorithm that systematises this model-building procedure. We use the algorithm to generate computational representations of all of the tree-level completions of the operators up to and including mass-dimension 11. Almost all of these correspond to models of radiative neutrino mass. Our work includes operators involving derivatives, updated estimates for the bounds on the new-physics scale associated with each operator, an analysis of various features of the models, and a look at some examples. We find that a number of operators do not admit any completions not also generating lower-dimensional operators or larger contributions to the neutrino mass, ruling them out as playing a dominant role in the neutrino-mass generation. Additionally, we show that there are at most five models containing three or fewer exotic multiplets that predict new physics that must lie below 100 TeV. Accompanying this work we also make available a searchable database containing all of our results and the code used to find the completions. We emphasise that our methods extend beyond the study of neutrino-mass models, and may be useful for generating completions of high-dimensional operators in other effective field theories. Example code: ref. [37].https://doi.org/10.1007/JHEP01(2021)074Beyond Standard ModelNeutrino Physics
collection DOAJ
language English
format Article
sources DOAJ
author John Gargalionis
Raymond R. Volkas
spellingShingle John Gargalionis
Raymond R. Volkas
Exploding operators for Majorana neutrino masses and beyond
Journal of High Energy Physics
Beyond Standard Model
Neutrino Physics
author_facet John Gargalionis
Raymond R. Volkas
author_sort John Gargalionis
title Exploding operators for Majorana neutrino masses and beyond
title_short Exploding operators for Majorana neutrino masses and beyond
title_full Exploding operators for Majorana neutrino masses and beyond
title_fullStr Exploding operators for Majorana neutrino masses and beyond
title_full_unstemmed Exploding operators for Majorana neutrino masses and beyond
title_sort exploding operators for majorana neutrino masses and beyond
publisher SpringerOpen
series Journal of High Energy Physics
issn 1029-8479
publishDate 2021-01-01
description Abstract Building UV completions of lepton-number-violating effective operators has proved to be a useful way of studying and classifying models of Majorana neutrino mass. In this paper we describe and implement an algorithm that systematises this model-building procedure. We use the algorithm to generate computational representations of all of the tree-level completions of the operators up to and including mass-dimension 11. Almost all of these correspond to models of radiative neutrino mass. Our work includes operators involving derivatives, updated estimates for the bounds on the new-physics scale associated with each operator, an analysis of various features of the models, and a look at some examples. We find that a number of operators do not admit any completions not also generating lower-dimensional operators or larger contributions to the neutrino mass, ruling them out as playing a dominant role in the neutrino-mass generation. Additionally, we show that there are at most five models containing three or fewer exotic multiplets that predict new physics that must lie below 100 TeV. Accompanying this work we also make available a searchable database containing all of our results and the code used to find the completions. We emphasise that our methods extend beyond the study of neutrino-mass models, and may be useful for generating completions of high-dimensional operators in other effective field theories. Example code: ref. [37].
topic Beyond Standard Model
Neutrino Physics
url https://doi.org/10.1007/JHEP01(2021)074
work_keys_str_mv AT johngargalionis explodingoperatorsformajorananeutrinomassesandbeyond
AT raymondrvolkas explodingoperatorsformajorananeutrinomassesandbeyond
_version_ 1724335404073615360