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arXiv · 2203.04127

Fermionic wave functions and Grassmann fields as possible sources of dark energy

Abstract

We study a cosmological model with a fermionic field which can be interpreted as a source of dark energy in the universe. Two different approaches were considered, the first one with a massless fermionic field represented by a standard wave-function and the second one where a massive field is a Grassmann variable. {The first case naturally reduces to a XCDM model with a constant equation of state parameter, while the last case reproduces a $w(z)$CDM model for a massive field}, and in the massless limit, the intrinsic grassmannian property of the field leads always to a vacuum equation of state parameter, irrespective the specific form of the potential. Both cases leads to a dark energy contribution of the fermionic sector. The models are totally compatible with recent cosmological data from Supernovae, BAO and Hubble parameter measurements. A brief study of linear evolution of density perturbations shows that some of the small scale problems related to standard model can be at least alleviated.

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BibTeXRIS

L. C. T. Brito, S. H. Pereira, L. N. Barboza, J. C. C. Felipe, J. F. Jesus. 2022-03-05. Fermionic wave functions and Grassmann fields as possible sources of dark energy. https://doi.org/10.1140/epjc/s10052-022-10779-y

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