Anisotropic Dark Energy from String Compactifications
Diego Gallego, J. Bayron Orjuela-Quintana, C\'esar A., Valenzuela-Toledo

TL;DR
This paper investigates a string-inspired multifield dark energy model with anisotropic solutions, highlighting the role of vector fields in enabling slow-roll dynamics despite steep potentials, and discusses its cosmological implications.
Contribution
It introduces a novel string-inspired multifield dark energy model with anisotropic attractors, emphasizing the vector field's role in slow-roll dynamics within the superstring landscape.
Findings
Two anisotropic attractor solutions compatible with current cosmological observations.
Vector fields enable slow-roll dynamics on steep potentials.
Challenges in parameter space justification within string theory landscape.
Abstract
We explore the cosmological dynamics of a minimalistic yet generic string-inspired model for multifield dark energy. Adopting a supergravity four-dimensional viewpoint, we motivate the model's structure arising from superstring compactifications involving a chiral superfield and a pure gauge sector. The chiral sector gives rise to a pair of scalar fields, such as the axio-dilaton, which are kinetically coupled. However, the scalar potential depends on only one of them, further entwined with the vector field through the gauge kinetic function. The model has two anisotropic attractor solutions that, despite a steep potential and thanks to multifield dynamics, could explain the current accelerated expansion of the Universe while satisfying observational constraints on the late-times cosmological anisotropy. Nevertheless, justifying the parameter space allowing for slow roll dynamics…
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Taxonomy
TopicsParticle physics theoretical and experimental studies · Cosmology and Gravitation Theories · Computational Physics and Python Applications
