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Non-Perturbative Constraints on Light Sparticles from Properties of the RG Flow

We study certain small supersymmetry-breaking perturbations of a large class of strongly coupled four-dimensional R-symmetric renormalization group (RG) flows between superconformal field theories in the ultraviolet (UV) and the infrared (IR). We analyze the conditions under which these perturbation...

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Autor principal: Buican, Matthew
Lenguaje:eng
Publicado: 2012
Materias:
Acceso en línea:https://dx.doi.org/10.1007/JHEP10(2014)026
http://cds.cern.ch/record/1456172
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author Buican, Matthew
author_facet Buican, Matthew
author_sort Buican, Matthew
collection CERN
description We study certain small supersymmetry-breaking perturbations of a large class of strongly coupled four-dimensional R-symmetric renormalization group (RG) flows between superconformal field theories in the ultraviolet (UV) and the infrared (IR). We analyze the conditions under which these perturbations scale to zero at leading order in the deep IR, resulting in accidental supersymmetry. Furthermore, we connect the emergence of IR supersymmetry in this context with a quantity that was recently conjectured to be larger at the UV starting points of the underlying supersymmetric flows than at the corresponding IR endpoints, and we propose a bound on emergent supersymmetry. Along the way, we prove a simple and useful non-perturbative theorem regarding the IR behavior of global flavor currents. Our results suggest general ways in which light stop particles can emerge and potentially influence physics at the Large Hadron Collider.
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institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2012
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spelling cern-14561722022-08-10T20:33:06Zdoi:10.1007/JHEP10(2014)026http://cds.cern.ch/record/1456172engBuican, MatthewNon-Perturbative Constraints on Light Sparticles from Properties of the RG FlowParticle Physics - TheoryWe study certain small supersymmetry-breaking perturbations of a large class of strongly coupled four-dimensional R-symmetric renormalization group (RG) flows between superconformal field theories in the ultraviolet (UV) and the infrared (IR). We analyze the conditions under which these perturbations scale to zero at leading order in the deep IR, resulting in accidental supersymmetry. Furthermore, we connect the emergence of IR supersymmetry in this context with a quantity that was recently conjectured to be larger at the UV starting points of the underlying supersymmetric flows than at the corresponding IR endpoints, and we propose a bound on emergent supersymmetry. Along the way, we prove a simple and useful non-perturbative theorem regarding the IR behavior of global flavor currents. Our results suggest general ways in which light stop particles can emerge and potentially influence physics at the Large Hadron Collider.We study certain small supersymmetry-breaking perturbations of a large class of strongly coupled four-dimensional R-symmetric renormalization group (RG) flows between superconformal field theories in the ultraviolet (UV) and the infrared (IR). We analyze the conditions under which these perturbations scale to zero at leading order in the deep IR, resulting in accidental supersymmetry. Furthermore, we connect the emergence of IR supersymmetry in this context with a quantity that was recently conjectured to be larger at the UV starting points of the underlying supersymmetric flows than at the corresponding IR endpoints, and we propose a bound on emergent supersymmetry. Along the way, we prove a simple and useful non-perturbative theorem regarding the IR behavior of global flavor currents. Our results suggest general ways in which light stop particles can emerge and potentially influence physics at the Large Hadron Collider.We study certain small supersymmetry-breaking perturbations of a large class of strongly coupled four-dimensional R-symmetric renormalization group (RG) flows between superconformal field theories in the ultraviolet (UV) and the infrared (IR). We analyze the conditions under which these perturbations scale to zero at leading order in the deep IR, resulting in accidental supersymmetry. Furthermore, we connect the emergence of IR supersymmetry in this context with a quantity that was recently conjectured to be larger at the UV starting points of the underlying supersymmetric flows than at the corresponding IR endpoints, and we propose a bound on emergent supersymmetry. Along the way, we prove a simple and useful non-perturbative theorem regarding the IR behavior of global flavor currents. Our results suggest general ways in which light stop particles can emerge and potentially influence physics at the Large Hadron Collider.arXiv:1206.3033CERN-PH-TH-2012-156CERN-PH-TH-2012-156oai:cds.cern.ch:14561722012-06-15
spellingShingle Particle Physics - Theory
Buican, Matthew
Non-Perturbative Constraints on Light Sparticles from Properties of the RG Flow
title Non-Perturbative Constraints on Light Sparticles from Properties of the RG Flow
title_full Non-Perturbative Constraints on Light Sparticles from Properties of the RG Flow
title_fullStr Non-Perturbative Constraints on Light Sparticles from Properties of the RG Flow
title_full_unstemmed Non-Perturbative Constraints on Light Sparticles from Properties of the RG Flow
title_short Non-Perturbative Constraints on Light Sparticles from Properties of the RG Flow
title_sort non-perturbative constraints on light sparticles from properties of the rg flow
topic Particle Physics - Theory
url https://dx.doi.org/10.1007/JHEP10(2014)026
http://cds.cern.ch/record/1456172
work_keys_str_mv AT buicanmatthew nonperturbativeconstraintsonlightsparticlesfrompropertiesofthergflow