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ALPINIST: Axion-Like Particles In Numerous Interactions Simulated and Tabulated

Proton beam dump experiments are among the most promising strategies to search for light and feebly interacting states such as axion-like particles (ALPs). The interpretation of these experiments is however complicated by the wide range of ALP models and the multitude of different production and dec...

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Detalles Bibliográficos
Autores principales: Jerhot, Jan, Döbrich, Babette, Ertas, Fatih, Kahlhoefer, Felix, Spadaro, Tommaso
Lenguaje:eng
Publicado: 2022
Materias:
Acceso en línea:https://dx.doi.org/10.1007/JHEP07(2022)094
http://cds.cern.ch/record/2799784
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author Jerhot, Jan
Döbrich, Babette
Ertas, Fatih
Kahlhoefer, Felix
Spadaro, Tommaso
author_facet Jerhot, Jan
Döbrich, Babette
Ertas, Fatih
Kahlhoefer, Felix
Spadaro, Tommaso
author_sort Jerhot, Jan
collection CERN
description Proton beam dump experiments are among the most promising strategies to search for light and feebly interacting states such as axion-like particles (ALPs). The interpretation of these experiments is however complicated by the wide range of ALP models and the multitude of different production and decay channels that can induce observable signals. Here we propose a new approach to this problem by separating the calculation of constraints and projected sensitivities into model-independent and model-dependent parts. The former rely on extensive Monte Carlo simulations of ALP production and decays, as well as estimates of the detection efficiencies based on simplified detector geometries. Once these simulations have been performed and tabulated, the latter parts only require simple analytical rescalings that can be performed using the public code ALPINIST released together with this work. We illustrate this approach by considering several ALP models with couplings to Standard Model gauge bosons. For the case of ALPs coupled to gluons we show that the sensitivity of proton beam dump experiments can be extended significantly by considering hadronic ALP decays into three-body final states.
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institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2022
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spelling cern-27997842023-01-31T08:51:40Zdoi:10.1007/JHEP07(2022)094http://cds.cern.ch/record/2799784engJerhot, JanDöbrich, BabetteErtas, FatihKahlhoefer, FelixSpadaro, TommasoALPINIST: Axion-Like Particles In Numerous Interactions Simulated and Tabulatedhep-exParticle Physics - Experimenthep-phParticle Physics - PhenomenologyProton beam dump experiments are among the most promising strategies to search for light and feebly interacting states such as axion-like particles (ALPs). The interpretation of these experiments is however complicated by the wide range of ALP models and the multitude of different production and decay channels that can induce observable signals. Here we propose a new approach to this problem by separating the calculation of constraints and projected sensitivities into model-independent and model-dependent parts. The former rely on extensive Monte Carlo simulations of ALP production and decays, as well as estimates of the detection efficiencies based on simplified detector geometries. Once these simulations have been performed and tabulated, the latter parts only require simple analytical rescalings that can be performed using the public code ALPINIST released together with this work. We illustrate this approach by considering several ALP models with couplings to Standard Model gauge bosons. For the case of ALPs coupled to gluons we show that the sensitivity of proton beam dump experiments can be extended significantly by considering hadronic ALP decays into three-body final states.Proton beam dump experiments are among the most promising strategies to search for light and feebly interacting states such as axion-like particles (ALPs). The interpretation of these experiments is however complicated by the wide range of ALP models and the multitude of different production and decay channels that can induce observable signals. Here we propose a new approach to this problem by separating the calculation of constraints and projected sensitivities into model-independent and model-dependent parts. The former rely on extensive Monte Carlo simulations of ALP production and decays, as well as estimates of the detection efficiencies based on simplified detector geometries. Once these simulations have been performed and tabulated, the latter parts only require simple analytical rescalings that can be performed using the public code ALPINIST released together with this work. We illustrate this approach by considering several ALP models with couplings to Standard Model gauge bosons. For the case of ALPs coupled to gluons we show that the sensitivity of proton beam dump experiments can be extended significantly by considering hadronic ALP decays into three-body final states.arXiv:2201.05170TTK-22-04CP3-22-02oai:cds.cern.ch:27997842022-01-13
spellingShingle hep-ex
Particle Physics - Experiment
hep-ph
Particle Physics - Phenomenology
Jerhot, Jan
Döbrich, Babette
Ertas, Fatih
Kahlhoefer, Felix
Spadaro, Tommaso
ALPINIST: Axion-Like Particles In Numerous Interactions Simulated and Tabulated
title ALPINIST: Axion-Like Particles In Numerous Interactions Simulated and Tabulated
title_full ALPINIST: Axion-Like Particles In Numerous Interactions Simulated and Tabulated
title_fullStr ALPINIST: Axion-Like Particles In Numerous Interactions Simulated and Tabulated
title_full_unstemmed ALPINIST: Axion-Like Particles In Numerous Interactions Simulated and Tabulated
title_short ALPINIST: Axion-Like Particles In Numerous Interactions Simulated and Tabulated
title_sort alpinist: axion-like particles in numerous interactions simulated and tabulated
topic hep-ex
Particle Physics - Experiment
hep-ph
Particle Physics - Phenomenology
url https://dx.doi.org/10.1007/JHEP07(2022)094
http://cds.cern.ch/record/2799784
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AT ertasfatih alpinistaxionlikeparticlesinnumerousinteractionssimulatedandtabulated
AT kahlhoeferfelix alpinistaxionlikeparticlesinnumerousinteractionssimulatedandtabulated
AT spadarotommaso alpinistaxionlikeparticlesinnumerousinteractionssimulatedandtabulated