4.7 Article

Minimum main sequence mass in quadratic Palatini f(R) gravity

Journal

PHYSICAL REVIEW D
Volume 100, Issue 4, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevD.100.044020

Keywords

-

Funding

  1. Ramon y Cajal (Spain) [RYC-2013-13019]
  2. Atraccion de Talento Investigador programme of the Comunidad de Madrid (Spain) [2018-T1/TIC-10431]
  3. Fundacao para a Ciencia e a Tecnologia (FCT, Portugal) [UID/FIS/04434/2013, PTDC/FIS-OUT/29048/2017, PTDC/FIS-PAR/31938/2017]
  4. FAPES (Brazil)
  5. Spanish Projects [FIS2014-57387-C3-1-P, FIS2017-84440-C2-1-P]
  6. Generalitat Valenciana [H2020-MSCA-RISE-2017, FunFiCO-777740, SEJI/2017/042]
  7. Severo Ochoa (Spain) [SEV-2014-0398]
  8. FAPESQ-PB/CNPQ, Brazil [006/2018 PRONEX]
  9. EU COST Actions [CA15117, CA18108]
  10. [CPANPHY-1205388]
  11. Fundação para a Ciência e a Tecnologia [PTDC/FIS-PAR/31938/2017] Funding Source: FCT

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General relativity yields an analytical prediction of a minimum required mass of roughly similar to 0.08-0.09 M-circle dot for a star to stably burn sufficient hydrogen to fully compensate photospheric losses and, therefore, to belong to the main sequence. Those objects below this threshold ( brown dwarfs) eventually cool down without any chance to stabilize their internal temperature. In this work we consider quadratic Palatini f(R) gravity and show that the corresponding Newtonian hydrostatic equilibrium equation contains a new term whose effect is to introduce a weakening/strengthening of the gravitational interaction inside astrophysical bodies. This fact modifies the general relativity prediction for this minimum main sequence mass. Through a crude analytical modeling we use this result in order to constraint a combination of the quadratic f(R) gravity parameter and the central density according to astrophysical observations.

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