Recently we studied the direct detection of multi-component dark matter with arbitrary local energy densities. Although the generation of the dark matter relic abundance is model-dependent, and in principle could be only indirectly related to direct detection, it is interesting to consider the implications of the former on the latter. In this work we conduct an extended analysis to include constraints from two natural scenarios of dark matter genesis: asymmetric dark matter and thermal freeze-out. In the first (second) case, the dark matter number (energy) densities of the different components are expected to be similar. In the case of thermal freeze-out, we assume that the global energy density scales with the local one. In our numerical a...
Dark matter (DM) may belong to a hidden sector (HS) that is only feebly interacting with the standar...
We study the relic abundance of several stable particles from a generic dark sector, including the p...
Observations of the largest scales tell us that about 25% of the energy density in our Universe is i...
We study the case of multi-component dark matter, in particular how direct detection signals are mod...
We study the case of multi-component dark matter, in particular how direct detection signals are mod...
International audienceWe consider a model of two-component dark matter based on a hidden U(1)D symme...
We initiate the study of novel thermal dark matter (DM) scenarios where present-day annihilation of ...
From astrophysical and cosmological observations, it is known that most of the matter in the Univers...
Abstract. We study the constraints from direct detection and solar capture on dark matter scenarios ...
It is a puzzle why the densities of dark matter and dark energy are nearly equal today when they sca...
We promote the idea of multi-component Dark Matter (DM) to explain re-sults from both direct and ind...
Thermal freeze-out of a weakly interacting massive particle is the dominant paradigm for dark matter...
We study the reach of direct detection experiments for large bound states (containing 104 or more da...
10 pages, 5 figuresInternational audienceThere are several ways to explain the dark matter relic den...
We initiate the study of novel thermal dark matter (DM) scenarios where present-day annihilation of ...
Dark matter (DM) may belong to a hidden sector (HS) that is only feebly interacting with the standar...
We study the relic abundance of several stable particles from a generic dark sector, including the p...
Observations of the largest scales tell us that about 25% of the energy density in our Universe is i...
We study the case of multi-component dark matter, in particular how direct detection signals are mod...
We study the case of multi-component dark matter, in particular how direct detection signals are mod...
International audienceWe consider a model of two-component dark matter based on a hidden U(1)D symme...
We initiate the study of novel thermal dark matter (DM) scenarios where present-day annihilation of ...
From astrophysical and cosmological observations, it is known that most of the matter in the Univers...
Abstract. We study the constraints from direct detection and solar capture on dark matter scenarios ...
It is a puzzle why the densities of dark matter and dark energy are nearly equal today when they sca...
We promote the idea of multi-component Dark Matter (DM) to explain re-sults from both direct and ind...
Thermal freeze-out of a weakly interacting massive particle is the dominant paradigm for dark matter...
We study the reach of direct detection experiments for large bound states (containing 104 or more da...
10 pages, 5 figuresInternational audienceThere are several ways to explain the dark matter relic den...
We initiate the study of novel thermal dark matter (DM) scenarios where present-day annihilation of ...
Dark matter (DM) may belong to a hidden sector (HS) that is only feebly interacting with the standar...
We study the relic abundance of several stable particles from a generic dark sector, including the p...
Observations of the largest scales tell us that about 25% of the energy density in our Universe is i...