Neutrino oscillation in the q-metric

Abstract We investigate neutrino oscillation in the field of an axially symmetric space-time, employing the so-called q-metric, in the context of general relativity. Following the standard approach, we compute the phase shift invoking the weak and strong field limits and small deformation. To do so,...

Full description

Bibliographic Details
Main Authors: Kuantay Boshkayev, Orlando Luongo, Marco Muccino
Format: Article
Language:English
Published: SpringerOpen 2020-10-01
Series:European Physical Journal C: Particles and Fields
Online Access:http://link.springer.com/article/10.1140/epjc/s10052-020-08533-3
id doaj-7d2c458a5a4d4db5aa4c7749951d108c
record_format Article
spelling doaj-7d2c458a5a4d4db5aa4c7749951d108c2020-11-25T03:05:39ZengSpringerOpenEuropean Physical Journal C: Particles and Fields1434-60441434-60522020-10-01801011210.1140/epjc/s10052-020-08533-3Neutrino oscillation in the q-metricKuantay Boshkayev0Orlando Luongo1Marco Muccino2National Nanotechnology Laboratory of Open Type, Department of Theoretical and Nuclear Physics, Al-Farabi Kazakh National UniversityNational Nanotechnology Laboratory of Open Type, Department of Theoretical and Nuclear Physics, Al-Farabi Kazakh National UniversityNational Nanotechnology Laboratory of Open Type, Department of Theoretical and Nuclear Physics, Al-Farabi Kazakh National UniversityAbstract We investigate neutrino oscillation in the field of an axially symmetric space-time, employing the so-called q-metric, in the context of general relativity. Following the standard approach, we compute the phase shift invoking the weak and strong field limits and small deformation. To do so, we consider neutron stars, white dwarfs and supernovae as strong gravitational regimes whereas the solar system as weak field regime. We argue that the inclusion of the quadrupole parameter leads to the modification of the well-known results coming from the spherical solution due to the Schwarschild space-time. Hence, we show that in the solar system regime, considering the Earth and Sun, there is a weak probability to detect deviations from the flat case, differently from the case of neutron stars and white dwarfs in which this probability is larger. Thus, we heuristically discuss some implications on constraining the free parameters of the phase shift by means of astrophysical neutrinos. A few consequences in cosmology and possible applications for future space experiments are also discussed throughout the text.http://link.springer.com/article/10.1140/epjc/s10052-020-08533-3
collection DOAJ
language English
format Article
sources DOAJ
author Kuantay Boshkayev
Orlando Luongo
Marco Muccino
spellingShingle Kuantay Boshkayev
Orlando Luongo
Marco Muccino
Neutrino oscillation in the q-metric
European Physical Journal C: Particles and Fields
author_facet Kuantay Boshkayev
Orlando Luongo
Marco Muccino
author_sort Kuantay Boshkayev
title Neutrino oscillation in the q-metric
title_short Neutrino oscillation in the q-metric
title_full Neutrino oscillation in the q-metric
title_fullStr Neutrino oscillation in the q-metric
title_full_unstemmed Neutrino oscillation in the q-metric
title_sort neutrino oscillation in the q-metric
publisher SpringerOpen
series European Physical Journal C: Particles and Fields
issn 1434-6044
1434-6052
publishDate 2020-10-01
description Abstract We investigate neutrino oscillation in the field of an axially symmetric space-time, employing the so-called q-metric, in the context of general relativity. Following the standard approach, we compute the phase shift invoking the weak and strong field limits and small deformation. To do so, we consider neutron stars, white dwarfs and supernovae as strong gravitational regimes whereas the solar system as weak field regime. We argue that the inclusion of the quadrupole parameter leads to the modification of the well-known results coming from the spherical solution due to the Schwarschild space-time. Hence, we show that in the solar system regime, considering the Earth and Sun, there is a weak probability to detect deviations from the flat case, differently from the case of neutron stars and white dwarfs in which this probability is larger. Thus, we heuristically discuss some implications on constraining the free parameters of the phase shift by means of astrophysical neutrinos. A few consequences in cosmology and possible applications for future space experiments are also discussed throughout the text.
url http://link.springer.com/article/10.1140/epjc/s10052-020-08533-3
work_keys_str_mv AT kuantayboshkayev neutrinooscillationintheqmetric
AT orlandoluongo neutrinooscillationintheqmetric
AT marcomuccino neutrinooscillationintheqmetric
_version_ 1724677339881668608