Revisiting Universal Extra-Dimension Model with Gravity Mediated Decays

Fuente: arXiv
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Autores principales: Ghosh, Kirtiman, Huitu, Katri, Sahu, Rameswar
Formato: Preprint
Publicado: 2024
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author Ghosh, Kirtiman
Huitu, Katri
Sahu, Rameswar
author_facet Ghosh, Kirtiman
Huitu, Katri
Sahu, Rameswar
contents We explore the collider phenomenology of the fat-brane realization of the Minimal Universal Extra Dimension (mUED) model, where Standard Model (SM) fields propagate in a small extra dimension while gravity accesses additional large extra dimensions. This configuration allows for gravity-mediated decay (GMD) of Kaluza-Klein (KK) particles, resulting in unique final states with hard photons, jets, massive SM bosons, and large missing transverse energy due to invisible KK gravitons. We derive updated constraints on the model's parameter space by recasting ATLAS mono-photon, di-photon, and multi-jet search results using 139 inverse femtobern of integrated luminosity data. Recognizing that current LHC search strategies are tailored for supersymmetric scenarios and may not fully capture the distinct signatures, we propose optimized strategies using machine learning algorithms to tag boosted SM bosons and enhance signal discrimination against SM backgrounds. These methods improve sensitivity to fat-brane mUED signatures and offer promising prospects for probing this model in future LHC runs.
format Preprint
id arxiv_https___arxiv_org_abs_2412_09344
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Revisiting Universal Extra-Dimension Model with Gravity Mediated Decays
Ghosh, Kirtiman
Huitu, Katri
Sahu, Rameswar
High Energy Physics - Phenomenology
We explore the collider phenomenology of the fat-brane realization of the Minimal Universal Extra Dimension (mUED) model, where Standard Model (SM) fields propagate in a small extra dimension while gravity accesses additional large extra dimensions. This configuration allows for gravity-mediated decay (GMD) of Kaluza-Klein (KK) particles, resulting in unique final states with hard photons, jets, massive SM bosons, and large missing transverse energy due to invisible KK gravitons. We derive updated constraints on the model's parameter space by recasting ATLAS mono-photon, di-photon, and multi-jet search results using 139 inverse femtobern of integrated luminosity data. Recognizing that current LHC search strategies are tailored for supersymmetric scenarios and may not fully capture the distinct signatures, we propose optimized strategies using machine learning algorithms to tag boosted SM bosons and enhance signal discrimination against SM backgrounds. These methods improve sensitivity to fat-brane mUED signatures and offer promising prospects for probing this model in future LHC runs.
title Revisiting Universal Extra-Dimension Model with Gravity Mediated Decays
topic High Energy Physics - Phenomenology
url https://arxiv.org/abs/2412.09344