Yoga Dark Energy: Natural Relaxation and Other Dark Implications of a Supersymmetric Gravity Sector
C.P. Burgess, Danielle Dineen, F. Quevedo

TL;DR
This paper develops a class of models combining supersymmetry, scale invariance, and relaxation mechanisms to suppress vacuum energy, stabilize the dilaton, and explain dark energy and the electroweak hierarchy.
Contribution
It introduces a novel framework integrating supersymmetry, scale invariance, and relaxation to address vacuum energy and hierarchy problems.
Findings
Stable de Sitter minimum for the dilaton potential.
Natural quintessence model for Dark Energy.
Potential to resolve the Hubble tension.
Abstract
We construct a class of 4D `yoga' (naturally relaxed) models for which the gravitational response of heavy-particle vacuum energies is strongly suppressed. The models contain three ingredients: (i) a relaxation mechanism, (ii) a very supersymmetric gravity sector coupled to matter for which supersymmetry is non-linearly realised, and (iii) an accidental approximate scale invariance expressed through the presence of a low-energy dilaton supermultiplet. All three are common in higher-dimensional and string constructions and although none suffices on its own, taken together they can dramatically suppress the net vacuum-energy density. The dilaton's {\it vev}~ determines the weak scale . We compute the potential for and find it can be stabilized in a local de Sitter minimum at sufficiently large field values to explain the electroweak hierarchy, doing so…
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