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September 17, 2025Journal of High Energy Physics5 citationsOpen Access

Bulk/boundary modular quintessence and DESI

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LALuis A. AnchordoquiIAIgnatios AntoniadisNCNiccolò Cribiori

Key Points

  • The proposed model suggests two scalar fields to explain dark energy dynamics and its smallness.
  • One scalar field corresponds to dark energy density near the boundary, while the other evolves in the bulk.
  • This quintessence model aligns with findings from the latest DESI results, supporting dynamical dark energy.
  • The scenario adheres to existing observations of the Cosmic Microwave Background and supernovas, indicating its viability.

Abstract

A bstract The latest DESI DR2 results, when combined with other independent cosmological data on the Cosmic Microwave Background and supernovas, suggest a preference for dynamical dark energy. We propose a novel cosmological scenario, which features two distinct scalar fields. One governs the magnitude of the present-day dark energy density and is related to the size of extra-dimensions. Accounting for the observed smallness of this energy density requires the scalar to reside near the boundary of field space. The second field, responsible for the time evolution of dark energy and associated with the string coupling, must instead lie in the bulk to remain consistent with the non-observation of light string states. We show that a natural candidate for such dark energy dynamics is a quintessence modular-invariant potential, in which the second scalar field rolls down a negatively curved slope, starting from a self-dual critical point. We find that this scenario is in good agreement with the latest findings by DESI.

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Cite This Study

Anchordoqui et al. (2025) studied this question.

synapsesocial.com/papers/68d4605931b076d99fa5ff85https://doi.org/10.1007/jhep09(2025)128
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