2010/09/22 by Ilídio Lopes, Joseph Silk · 1 citation
Physics and Astronomy · #Astrophysics #Core (optical fiber) #Cosmology #Cosmology and Gravitation Theories #Dark Matter and Cosmic Phenomena #Dark energy #Dark fluid #Dark matter #Helioseismology #Hot dark matter #Optics #Particle physics #Physics #Quantum mechanics #Scalar field dark matter #Solar and Space Plasma Dynamics #Solar core #astro-ph.CO #astro-ph.SR #hep-ex #hep-ph #physics.flu-dyn
paper · pdf · doi:10.1088/2041-8205/722/1/l95
published as 2010, ApJ 722 L95 · Article published in The Astrophysical Journal Letters, 5 pages and 4 figures
openalex publication_date 2010/09/22 · arxiv created 2010/09/26 · arxiv updated 2010/09/28 · openalex created_date 2025/10/10 · openalex updated_date 2026/08/05
Although helioseismology has been used as an effective tool for studying the physical mechanisms acting in most of the solar interior, the microscopic level and the dynamics of the deep core are still not well understood.Helioseismological anomalies may be partially resolved if the Sun captures light, non-annihilating dark matter particles, a currently discussed dark matter candidate that is motivated by recent direct detection limits.Once trapped, such particles (4-10 GeV) naturally fill the solar core.With the use of a well-defined stellar evolution code that takes into account an accurate description of the capture of dark matter particles by the Sun, we investigate the impact of such particles in its inner core.Even a relatively small amount of dark matter particles in the solar core will leave an imprint on the absolute frequency values of gravity modes as well as the equidistant spacing between modes of the same degree.The period separation for gravity modes could reveal changes of up to 3% for annihilating dark matter and of up to 20% for non-annihilating dark matter.This effect is most pronounced in the case of the gravity dipole (l = 1) modes.