Cargando…

Toward inertial sensing with a 2$^{3}$S positronium beam

In this work, we discuss the possibility of inertial sensing with positronium in the 2$^{3}$S metastable state for the measurement of optical dipole, relativistic and gravitational forces on a purely leptonic matter-antimatter system. Starting from the characteristics of an available 2$^{3}$S beam,...

Descripción completa

Detalles Bibliográficos
Autores principales: Mariazzi, Sebastiano, Caravita, Ruggero, Doser, Michael, Nebbia, Giancarlo, Brusa, Roberto S.
Lenguaje:eng
Publicado: 2022
Materias:
Acceso en línea:https://dx.doi.org/10.1140/epjd/e2020-100585-8
http://cds.cern.ch/record/2717919
_version_ 1780965715566657536
author Mariazzi, Sebastiano
Caravita, Ruggero
Doser, Michael
Nebbia, Giancarlo
Brusa, Roberto S.
author_facet Mariazzi, Sebastiano
Caravita, Ruggero
Doser, Michael
Nebbia, Giancarlo
Brusa, Roberto S.
author_sort Mariazzi, Sebastiano
collection CERN
description In this work, we discuss the possibility of inertial sensing with positronium in the 2$^{3}$S metastable state for the measurement of optical dipole, relativistic and gravitational forces on a purely leptonic matter-antimatter system. Starting from the characteristics of an available 2$^{3}$S beam, we estimate the time necessary to measure accelerations ranging from ~10$^{5}$ m/s$^{2}$ to 9.1 m/s$^{2}$ with two different inertial sensitive devices: a classical moiré deflectometer and a Mach–Zehnder interferometer. The sensitivity of the Mach–Zehnder interferometer has been estimated to be several tens of times better than that of the moiré deflectometer, for the same measurement time. Different strategies to strengthen the 2$^{3}$S beam flux and to improve the sensitivity of the devices are proposed and analyzed. Among them, the most promising are reducing the divergence of the positronium beam through 2D laser Doppler cooling and coherent positronium Raman excitation from the ground state to the 2$^{3}$S level. If implemented, these improvements promise to result in the time required to measure an acceleration of 9.1 m/s$^{2}$ of few weeks and 100 m/s$^{2}$ of a few hours. Different detection schemes for resolving the fringe pattern shift generated on 2$^{3}$S positronium crossing the deflectometer/interferometer are also discussed.
id oai-inspirehep.net-1794834
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2022
record_format invenio
spelling oai-inspirehep.net-17948342022-03-10T03:30:52Zdoi:10.1140/epjd/e2020-100585-8http://cds.cern.ch/record/2717919engMariazzi, SebastianoCaravita, RuggeroDoser, MichaelNebbia, GiancarloBrusa, Roberto S.Toward inertial sensing with a 2$^{3}$S positronium beamPhysics in GeneralAccelerators and Storage RingsIn this work, we discuss the possibility of inertial sensing with positronium in the 2$^{3}$S metastable state for the measurement of optical dipole, relativistic and gravitational forces on a purely leptonic matter-antimatter system. Starting from the characteristics of an available 2$^{3}$S beam, we estimate the time necessary to measure accelerations ranging from ~10$^{5}$ m/s$^{2}$ to 9.1 m/s$^{2}$ with two different inertial sensitive devices: a classical moiré deflectometer and a Mach–Zehnder interferometer. The sensitivity of the Mach–Zehnder interferometer has been estimated to be several tens of times better than that of the moiré deflectometer, for the same measurement time. Different strategies to strengthen the 2$^{3}$S beam flux and to improve the sensitivity of the devices are proposed and analyzed. Among them, the most promising are reducing the divergence of the positronium beam through 2D laser Doppler cooling and coherent positronium Raman excitation from the ground state to the 2$^{3}$S level. If implemented, these improvements promise to result in the time required to measure an acceleration of 9.1 m/s$^{2}$ of few weeks and 100 m/s$^{2}$ of a few hours. Different detection schemes for resolving the fringe pattern shift generated on 2$^{3}$S positronium crossing the deflectometer/interferometer are also discussed.In this work, we discuss the possibility of inertial sensing with positronium in the $2^3 S$ metastable state for the measurement of optical dipole, relativistic and gravitational forces on a purely leptonic matter-antimatter system. Starting from the characteristics of an available $2^3 S$ beam, we estimate the time necessary to measure accelerations ranging from $\sim10^5$$m/s^2$ to 9.1 $m/s^2$ with two different inertial sensitive devices: a classical moiré deflectometer and a Mach-Zehnder interferometer. The sensitivity of the Mach-Zehnder interferometer has been estimated to be several tens of times better than that of the moiré deflectometer, for the same measurement time.\\ Different strategies to strengthen the $2^3 S$ beam flux and to improve the sensitivity of the devices are proposed and analyzed. Among them, the most promising are reducing the divergence of the positronium beam through 2D laser Doppler cooling and coherent positronium Raman excitation from the ground state to the $2^3 S$ level. If implemented, these improvements promise to result in the time required to measure an acceleration of 9.1 $m/s^2$ of few weeks and 100 $m/s^2$ of a few hours. Different detection schemes for resolving the fringe pattern shift generated on $2^3 S$ positronium crossing the deflectometer/interferometer are also discussed.arXiv:2203.02920oai:inspirehep.net:17948342022-03-06
spellingShingle Physics in General
Accelerators and Storage Rings
Mariazzi, Sebastiano
Caravita, Ruggero
Doser, Michael
Nebbia, Giancarlo
Brusa, Roberto S.
Toward inertial sensing with a 2$^{3}$S positronium beam
title Toward inertial sensing with a 2$^{3}$S positronium beam
title_full Toward inertial sensing with a 2$^{3}$S positronium beam
title_fullStr Toward inertial sensing with a 2$^{3}$S positronium beam
title_full_unstemmed Toward inertial sensing with a 2$^{3}$S positronium beam
title_short Toward inertial sensing with a 2$^{3}$S positronium beam
title_sort toward inertial sensing with a 2$^{3}$s positronium beam
topic Physics in General
Accelerators and Storage Rings
url https://dx.doi.org/10.1140/epjd/e2020-100585-8
http://cds.cern.ch/record/2717919
work_keys_str_mv AT mariazzisebastiano towardinertialsensingwitha23spositroniumbeam
AT caravitaruggero towardinertialsensingwitha23spositroniumbeam
AT dosermichael towardinertialsensingwitha23spositroniumbeam
AT nebbiagiancarlo towardinertialsensingwitha23spositroniumbeam
AT brusarobertos towardinertialsensingwitha23spositroniumbeam