Charting generalized supersoft supersymmetry

Abstract Without any shred of evidence for new physics from LHC, the last hiding spots of natural electroweak supersymmetry seem to lie either in compressed spectra or in spectra where scalars are suppressed with respect to the gauginos. While in the MSSM (or in any theory where supersymmetry is bro...

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Main Authors: Sabyasachi Chakraborty, Adam Martin, Tuhin S. Roy
Format: Article
Language:English
Published: SpringerOpen 2018-05-01
Series:Journal of High Energy Physics
Subjects:
Online Access:http://link.springer.com/article/10.1007/JHEP05(2018)176
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spelling doaj-15d631a8c43a4ecb9edae515730e265b2020-11-25T01:15:05ZengSpringerOpenJournal of High Energy Physics1029-84792018-05-012018514610.1007/JHEP05(2018)176Charting generalized supersoft supersymmetrySabyasachi Chakraborty0Adam Martin1Tuhin S. Roy2Department of Theoretical Physics, Tata Institute of Fundamental ResearchDepartment of Physics, University of Notre DameDepartment of Theoretical Physics, Tata Institute of Fundamental ResearchAbstract Without any shred of evidence for new physics from LHC, the last hiding spots of natural electroweak supersymmetry seem to lie either in compressed spectra or in spectra where scalars are suppressed with respect to the gauginos. While in the MSSM (or in any theory where supersymmetry is broken by the F-vev of a chiral spurion), a hierarchy between scalar and gaugino masses requires special constructions, it is automatic in scenarios where supersymmetry is broken by D-vev of a real spurion. In the latter framework, gaugino mediated contributions to scalar soft masses are finite (loop suppressed but not log-enhanced), a feature often referred to as “supersoftness”. Though phenomenologically attractive, pure supersoft models suffer from the μ-problem, potential color-breaking minima, large T-parameter, etc. These problems can be overcome without sacrificing the model’s virtues by departing from pure supersoftness and including μ-type effective operators at the messenger scale, that use the same D-vev, a framework known as generalized supersoft supersymmetry. The main purpose of this paper is to point out that the new operators also solve the last remaining issue associated with supersoft spectra, namely that a right handed (RH) slepton is predicted to be the lightest superpartner, rendering the setup cosmologically unfeasible. In particular, we show that the μ-operators in generalized supersoft generate a new source for scalar masses, which can raise the RH-slepton mass above bino due to corrections from renormalisation group evolutions (RGEs). In fact, a mild tuning can open up the bino-RH slepton coannihilation regime for a thermal dark matter. We derive the full set of RGEs required to determine the spectrum at low energies. Beginning with input conditions at a high scale, we show that completely viable spectra can be achieved.http://link.springer.com/article/10.1007/JHEP05(2018)176Supersymmetry Phenomenology
collection DOAJ
language English
format Article
sources DOAJ
author Sabyasachi Chakraborty
Adam Martin
Tuhin S. Roy
spellingShingle Sabyasachi Chakraborty
Adam Martin
Tuhin S. Roy
Charting generalized supersoft supersymmetry
Journal of High Energy Physics
Supersymmetry Phenomenology
author_facet Sabyasachi Chakraborty
Adam Martin
Tuhin S. Roy
author_sort Sabyasachi Chakraborty
title Charting generalized supersoft supersymmetry
title_short Charting generalized supersoft supersymmetry
title_full Charting generalized supersoft supersymmetry
title_fullStr Charting generalized supersoft supersymmetry
title_full_unstemmed Charting generalized supersoft supersymmetry
title_sort charting generalized supersoft supersymmetry
publisher SpringerOpen
series Journal of High Energy Physics
issn 1029-8479
publishDate 2018-05-01
description Abstract Without any shred of evidence for new physics from LHC, the last hiding spots of natural electroweak supersymmetry seem to lie either in compressed spectra or in spectra where scalars are suppressed with respect to the gauginos. While in the MSSM (or in any theory where supersymmetry is broken by the F-vev of a chiral spurion), a hierarchy between scalar and gaugino masses requires special constructions, it is automatic in scenarios where supersymmetry is broken by D-vev of a real spurion. In the latter framework, gaugino mediated contributions to scalar soft masses are finite (loop suppressed but not log-enhanced), a feature often referred to as “supersoftness”. Though phenomenologically attractive, pure supersoft models suffer from the μ-problem, potential color-breaking minima, large T-parameter, etc. These problems can be overcome without sacrificing the model’s virtues by departing from pure supersoftness and including μ-type effective operators at the messenger scale, that use the same D-vev, a framework known as generalized supersoft supersymmetry. The main purpose of this paper is to point out that the new operators also solve the last remaining issue associated with supersoft spectra, namely that a right handed (RH) slepton is predicted to be the lightest superpartner, rendering the setup cosmologically unfeasible. In particular, we show that the μ-operators in generalized supersoft generate a new source for scalar masses, which can raise the RH-slepton mass above bino due to corrections from renormalisation group evolutions (RGEs). In fact, a mild tuning can open up the bino-RH slepton coannihilation regime for a thermal dark matter. We derive the full set of RGEs required to determine the spectrum at low energies. Beginning with input conditions at a high scale, we show that completely viable spectra can be achieved.
topic Supersymmetry Phenomenology
url http://link.springer.com/article/10.1007/JHEP05(2018)176
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