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This PhD thesis documents two of the highest-profile searches for
supersymmetry performed at the ATLAS experiment using up to 80/fb
of proton-proton collision data at a center-of-mass energy of 13
TeV delivered by the Large Hadron Collider (LHC) during its Run 2
(2015-2018). The signals of interest feature a high multiplicity of
jets originating from the hadronisation of b-quarks and large
missing transverse momentum, which constitutes one of the most
promising final state signatures for discovery of new phenomena at
the LHC. The first search is focused on the strong production of a
pair of gluinos, with each gluino decaying into a neutralino and a
top-antitop-quark pair or a bottom-antibottom-quark pair. The
second search targets the pair production of higgsinos, with each
higgsino decaying into a gravitino and a Higgs boson, which in turn
is required to decay into a bottom-antibottom-quark pair. Both
searches employ state-of-the-art experimental techniques and
analysis strategies at the LHC, resulting in some of the most
restrictive bounds available to date on the masses of the
gluino,neutralino, and higgsino in the context of the models
explored.
This PhD thesis documents two of the highest-profile searches for
supersymmetry performed at the ATLAS experiment using up to 80/fb
of proton-proton collision data at a center-of-mass energy of 13
TeV delivered by the Large Hadron Collider (LHC) during its Run 2
(2015-2018). The signals of interest feature a high multiplicity of
jets originating from the hadronisation of b-quarks and large
missing transverse momentum, which constitutes one of the most
promising final state signatures for discovery of new phenomena at
the LHC. The first search is focused on the strong production of a
pair of gluinos, with each gluino decaying into a neutralino and a
top-antitop-quark pair or a bottom-antibottom-quark pair. The
second search targets the pair production of higgsinos, with each
higgsino decaying into a gravitino and a Higgs boson, which in turn
is required to decay into a bottom-antibottom-quark pair. Both
searches employ state-of-the-art experimental techniques and
analysis strategies at the LHC, resulting in some of the most
restrictive bounds available to date on the masses of the
gluino,neutralino, and higgsino in the context of the models
explored.
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