Cooling, conduction, compact objects: Gravothermal evolution of dissipative self-interacting dark matter halos
Ludwig D. Schmidt, Moritz S. Fischer, Mathias Garny
astro-ph.CO, astro-ph.GA, hep-ph
Submitted: 2026-06-17
Comments: 19 pages, 16 figures, 2 tables; to be submitted to A&A
Code: https://github.com/kboddy/GravothermalSIDM
License: http://creativecommons.org/licenses/by/4.0/
The gist: Many proposed self-interacting dark matter (SIDM) models give rise to radiative processes that can dissipate energy.
Terminology
Abstract
Many proposed self-interacting dark matter (SIDM) models give rise to radiative processes that can dissipate energy. Understanding their impact on astrophysical objects through simulations and comparing the results with observations may thus constrain SIDM models. In this work, we systematically investigate how dissipation alters the gravothermal evolution of isolated SIDM halos by independently varying dissipation and heat conduction and identify potential observational signatures. To this end, we present the first extension of the N-body formalism for frequent small-angle self-interactions (fSIDM) to include effective dissipation. We compare all results for isolated halos with a dissipative gravothermal fluid model to assess its validity and limitations. We find that dissipation qualitatively changes the gravothermal evolution of SIDM halos beyond simply accelerating collapse. Sufficiently strong central cooling can invert the usual role of heat conduction: the formation of an isothermal core is suppressed such that conduction remains directed inward throughout the evolution. Outer halo regions beyond the scale radius can cool efficiently rather than being heated by conduction, resulting in a larger region of mass infall and a less pronounced indentation between the core and the outer halo in the final density profile. These effects depend strongly on the cooling rate but are comparatively insensitive to the angular dependence of the self-interaction cross section. We further show that weakly dissipative self-interactions can explain the properties of the recently observed strong lens perturber in JVAS B1938+666 with significantly shorter evolution times or, equivalently, smaller cross sections compared to the elastic case. Our results open a new route to connecting halo structure and recently reported compact objects to dark-sector microphysics.
Sources
- The Cosmological Simulation Code OpenGadget3 - Implementation of Self-Interacting Dark Matter
- Survival of the most compact: the life and death of satellite halos in self-interacting dark matter
- SIDM and CDM interpretations of the million-solar-mass lensing perturber JVAS B1938+666- V
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