Supersymmetric Unification Without Low Energy Supersymmetry And Signatures for Fine-Tuning at the LHC
Nima Arkani-Hamed, Savas Dimopoulos

TL;DR
This paper proposes a framework where supersymmetry exists at a high scale but does not solve the hierarchy problem, addressing naturalness issues and predicting distinctive signatures for LHC experiments.
Contribution
It introduces a high-scale supersymmetry breaking scenario that removes many traditional supersymmetry problems and offers testable predictions for collider signatures.
Findings
Gluino becomes long-lived, with lifetime measurements probing scalar mass scale.
Higgs mass predicted to be around 120-150 GeV.
Precise Yukawa coupling measurements can test high-scale SUSY.
Abstract
The cosmological constant problem is a failure of naturalness and suggests that a fine-tuning mechanism is at work, which may also address the hierarchy problem. An example -- supported by Weinberg's successful prediction of the cosmological constant -- is the potentially vast landscape of vacua in string theory, where the existence of galaxies and atoms is promoted to a vacuum selection criterion. Then, low energy SUSY becomes unnecessary, and supersymmetry -- if present in the fundamental theory -- can be broken near the unification scale. All the scalars of the supersymmetric standard model become ultraheavy, except for a single finely tuned Higgs. Yet, the fermions of the supersymmetric standard model can remain light, protected by chiral symmetry, and account for the successful unification of gauge couplings. This framework removes all the difficulties of the SSM: the absence of a…
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