4.6 Article

Towards accurate cosmological predictions for rapidly oscillating scalar fields as dark matter

Journal

Publisher

IOP PUBLISHING LTD
DOI: 10.1088/1475-7516/2016/07/048

Keywords

cosmological perturbation theory; dark matter theory

Funding

  1. Catedras CONACYT
  2. UCMEXUS-CONACYT
  3. PRODEP
  4. DAIP-UGTO [732/2016, 878/2016]
  5. PIFI
  6. CONACyT Mexico [232893, 167335, 179881]
  7. Fronteras [281]
  8. Fundacion Marcos Moshinsky
  9. Instituto Avanzado de Cosmologla (IAC)

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As we are entering the era of precision cosmology, it is necessary to count on accurate cosmological predictions from any proposed model of dark matter. In this paper we present a novel approach to the cosmological evolution of scalar fields that eases their analytic and numerical analysis at the background and at the linear order of perturbations. The new method makes use of appropriate angular variables that simplify the writing of the equations of motion, and which also show that the usual field variables play a secondary role in the cosmological dynamics. We apply the method to a scalar field endowed with a quadratic potential and revisit its properties as dark matter. Some of the results known in the literature are recovered, and a better understanding of the physical properties of the model is provided. It is confirmed that there exists a Jeans wavenumber k(J), directly related to the suppression of linear perturbations at wavenumbers k > k(J), and which is verified to be k(J) = a root mH. We also discuss some semi -analytical results that are well satisfied by the full numerical solutions obtained from an amended version of the CMB code CLASS. Finally we draw some of the implications that this new treatment of the equations of motion may have in the prediction of cosmological observables from scalar field dark matter models.

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