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Supersymmetry, Naturalness, and Signatures at the LHC

Weak scale supersymmetry is often said to be fine-tuned, especially if the matter content is minimal. This is not true if there is a large A term for the top squarks. We present a systematic study on fine-tuning in minimal supersymmetric theories and identify low energy spectra that do not lead to s...

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Detalles Bibliográficos
Autores principales: Kitano, R, Nomura, Y
Lenguaje:eng
Publicado: 2006
Materias:
Acceso en línea:https://dx.doi.org/10.1103/PhysRevD.73.095004
http://cds.cern.ch/record/929433
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author Kitano, R
Nomura, Y
author_facet Kitano, R
Nomura, Y
author_sort Kitano, R
collection CERN
description Weak scale supersymmetry is often said to be fine-tuned, especially if the matter content is minimal. This is not true if there is a large A term for the top squarks. We present a systematic study on fine-tuning in minimal supersymmetric theories and identify low energy spectra that do not lead to severe fine-tuning. Characteristic features of these spectra are: a large A term for the top squarks, small top squark masses, moderately large tan\beta, and a small \mu parameter. There are classes of theories leading to these features, which are discussed. In one class, which allows a complete elimination of fine-tuning, the Higgsinos are the lightest among all the superpartners of the standard model particles, leading to three nearly degenerate neutralino/chargino states. This gives interesting signals at the LHC -- the dilepton invariant mass distribution has a very small endpoint and shows a particular shape determined by the Higgsino nature of the two lightest neutralinos. We demonstrate that these signals are indeed useful in realistic analyses by performing Monte Carlo simulations, including detector simulations and background estimations. We also present a method that allows the determination of all the relevant superparticle masses without using input from particular models, despite the limited kinematical information due to short cascades. This allows us to test various possible models, which is demonstrated in the case of a model with mixed moduli-anomaly mediation. We also give a simple derivation of special renormalization group properties associated with moduli mediated supersymmetry breaking, which are relevant in a model without fine-tuning.
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spelling cern-9294332019-09-30T06:29:59Zdoi:10.1103/PhysRevD.73.095004http://cds.cern.ch/record/929433engKitano, RNomura, YSupersymmetry, Naturalness, and Signatures at the LHCParticle Physics - PhenomenologyWeak scale supersymmetry is often said to be fine-tuned, especially if the matter content is minimal. This is not true if there is a large A term for the top squarks. We present a systematic study on fine-tuning in minimal supersymmetric theories and identify low energy spectra that do not lead to severe fine-tuning. Characteristic features of these spectra are: a large A term for the top squarks, small top squark masses, moderately large tan\beta, and a small \mu parameter. There are classes of theories leading to these features, which are discussed. In one class, which allows a complete elimination of fine-tuning, the Higgsinos are the lightest among all the superpartners of the standard model particles, leading to three nearly degenerate neutralino/chargino states. This gives interesting signals at the LHC -- the dilepton invariant mass distribution has a very small endpoint and shows a particular shape determined by the Higgsino nature of the two lightest neutralinos. We demonstrate that these signals are indeed useful in realistic analyses by performing Monte Carlo simulations, including detector simulations and background estimations. We also present a method that allows the determination of all the relevant superparticle masses without using input from particular models, despite the limited kinematical information due to short cascades. This allows us to test various possible models, which is demonstrated in the case of a model with mixed moduli-anomaly mediation. We also give a simple derivation of special renormalization group properties associated with moduli mediated supersymmetry breaking, which are relevant in a model without fine-tuning.hep-ph/0602096LBNL-59605SLAC-PUB-11674UCB-PTH-2006-01oai:cds.cern.ch:9294332006-02-10
spellingShingle Particle Physics - Phenomenology
Kitano, R
Nomura, Y
Supersymmetry, Naturalness, and Signatures at the LHC
title Supersymmetry, Naturalness, and Signatures at the LHC
title_full Supersymmetry, Naturalness, and Signatures at the LHC
title_fullStr Supersymmetry, Naturalness, and Signatures at the LHC
title_full_unstemmed Supersymmetry, Naturalness, and Signatures at the LHC
title_short Supersymmetry, Naturalness, and Signatures at the LHC
title_sort supersymmetry, naturalness, and signatures at the lhc
topic Particle Physics - Phenomenology
url https://dx.doi.org/10.1103/PhysRevD.73.095004
http://cds.cern.ch/record/929433
work_keys_str_mv AT kitanor supersymmetrynaturalnessandsignaturesatthelhc
AT nomuray supersymmetrynaturalnessandsignaturesatthelhc