Searches for new physics involving massive invisible particles

<p>One of the most obvious problems with the Standard Model is the lack of any explanation for dark matter: a form of matter predicted from astrophysical observations but not compatible with any known subatomic particle. Many theories of new physics predict dark matter candidates which could b...

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Bibliographic Details
Main Author: Burr, J
Other Authors: Barr, A
Format: Thesis
Language:English
Published: 2018
Subjects:
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author Burr, J
author2 Barr, A
author_facet Barr, A
Burr, J
author_sort Burr, J
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description <p>One of the most obvious problems with the Standard Model is the lack of any explanation for dark matter: a form of matter predicted from astrophysical observations but not compatible with any known subatomic particle. Many theories of new physics predict dark matter candidates which could be produced in 13 TeV collisions at the LHC. The primary experimental signature expected to accompany the production of a dark matter candidate is an imbalance in measurements of transverse momenta, referred to as E<sub>T</sub><sup>miss</sup>. This thesis first covers the E<sub>T</sub><sup>miss</sup> trigger, a system responsible for selecting events with large E<sub>T</sub><sup>miss</sup> for later use in analyses and a vital component in many analyses. This signature suffers from very large backgrounds from QCD events with little true E<sub>T</sub><sup>miss</sup> and the high thresholds that would be required to control pass rates pose a risk to the efficiencies of analyses. A technique is presented that is shown to be able to reduce the rate by a factor of almost 4 while retaining high efficiencies in analysis signal regions. This thesis then documents a search for new physics using 36.1 fb−1 of data collected by the ATLAS detector. The search targets final states with no leptons and very high jet multiplicities, ranging from ≥ 7 to ≥ 11 in the tightest signal regions, which are characteristic of long decay chains which can be predicted by certain new physics models, especially supersymmetry. By using this signature the analysis is able to use a looser selection on E<sub>T</sub><sup>miss</sup>, gaining sensitivity to areas of model spaces which may not be accessible to analyses reliant on the E<sub>T</sub><sup>miss</sup> trigger. No significant deviation from the Standard Model is observed and the analysis sets strong limits on the masses of supersymmetric particles, excluding gluino masses up to 1.8 TeV at the 95% confidence level.</p>
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spelling oxford-uuid:6693f438-7837-4bbe-9e47-f9c51735e6412022-03-26T18:32:49ZSearches for new physics involving massive invisible particlesThesishttp://purl.org/coar/resource_type/c_db06uuid:6693f438-7837-4bbe-9e47-f9c51735e641PhysicsEnglishORA Deposit2018Burr, JBarr, A<p>One of the most obvious problems with the Standard Model is the lack of any explanation for dark matter: a form of matter predicted from astrophysical observations but not compatible with any known subatomic particle. Many theories of new physics predict dark matter candidates which could be produced in 13 TeV collisions at the LHC. The primary experimental signature expected to accompany the production of a dark matter candidate is an imbalance in measurements of transverse momenta, referred to as E<sub>T</sub><sup>miss</sup>. This thesis first covers the E<sub>T</sub><sup>miss</sup> trigger, a system responsible for selecting events with large E<sub>T</sub><sup>miss</sup> for later use in analyses and a vital component in many analyses. This signature suffers from very large backgrounds from QCD events with little true E<sub>T</sub><sup>miss</sup> and the high thresholds that would be required to control pass rates pose a risk to the efficiencies of analyses. A technique is presented that is shown to be able to reduce the rate by a factor of almost 4 while retaining high efficiencies in analysis signal regions. This thesis then documents a search for new physics using 36.1 fb−1 of data collected by the ATLAS detector. The search targets final states with no leptons and very high jet multiplicities, ranging from ≥ 7 to ≥ 11 in the tightest signal regions, which are characteristic of long decay chains which can be predicted by certain new physics models, especially supersymmetry. By using this signature the analysis is able to use a looser selection on E<sub>T</sub><sup>miss</sup>, gaining sensitivity to areas of model spaces which may not be accessible to analyses reliant on the E<sub>T</sub><sup>miss</sup> trigger. No significant deviation from the Standard Model is observed and the analysis sets strong limits on the masses of supersymmetric particles, excluding gluino masses up to 1.8 TeV at the 95% confidence level.</p>
spellingShingle Physics
Burr, J
Searches for new physics involving massive invisible particles
title Searches for new physics involving massive invisible particles
title_full Searches for new physics involving massive invisible particles
title_fullStr Searches for new physics involving massive invisible particles
title_full_unstemmed Searches for new physics involving massive invisible particles
title_short Searches for new physics involving massive invisible particles
title_sort searches for new physics involving massive invisible particles
topic Physics
work_keys_str_mv AT burrj searchesfornewphysicsinvolvingmassiveinvisibleparticles