Jeans type instability of a complex self-interacting scalar field in general relativity
Abril Su\'arez, Pierre-Henri Chavanis

TL;DR
This paper analyzes the gravitational instability of a relativistic complex scalar field with self-interaction, deriving analytical expressions for the Jeans length and exploring implications for dark matter structure formation in the universe.
Contribution
It provides exact analytical formulas for the Jeans length in a relativistic scalar field model, accounting for self-interactions and relativistic effects, advancing understanding of dark matter structure formation.
Findings
Relativistic effects stabilize perturbations at large scales of the order of the Hubble length.
Jeans instability is suppressed in the early universe unless self-interaction is attractive.
Wave properties of the scalar field can prevent small-scale gravitational collapse, addressing CDM small-scale problems.
Abstract
We study the gravitational instability of a general relativistic complex scalar field with a quartic self-interaction in an infinite homogeneous static background. This quantum relativistic Jeans problem provides a simplified framework to study the formation of the large-scale structures of the Universe in the case where dark matter is made of a scalar field. The scalar field may represent the wave function of a relativistic self-gravitating Bose-Einstein condensate. Exact analytical expressions for the dispersion relation and Jeans length are obtained from a hydrodynamical representation of the Klein-Gordon-Einstein equations. When relativistic effects are fully accounted for, we find that the perturbations are stabilized at very large scales of the order of the Hubble length . Numerical applications are made for ultralight bosons without self-interaction (fuzzy…
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