Light Dark Matter from Self-cooling Dark Sectors
Esau Cervantes, Andrzej Hryczuk, Stefan Lederer
Abstract
Light thermally produced dark matter is subject to strong bounds stemming from its free-streaming impact on suppressing structure formation. In this paper we show that these limits are significantly alleviated if the dark sector undergoes self-cooling, a new mechanism for lowering the temperature of the dark sector plasma through cannibal self-interactions during freeze-in production. We find that the Lyman-α bounds can be modified by a few orders of magnitude in the sub-MeV region and frozen-in dark matter saturating the observed energy density can be as light as ≈ 1.9 (0.7) keV, compared to the ≈ 5.7 (1.9) keV warm dark matter limits determined from simulations. Interestingly, a secondary phase of cooling due to simultaneously efficient inverse cannibal- and decay-processes can dominate the modifications of Lyman-α bounds, rather than self-thermalization via cannibal-reactions itself.
Create a lesson
Related papers
Comprehensive reconstruction of collider events with hypergraph representation learning and graph-conditioned diffusion
Lining Mao, Yvonne Peters, Ethan Simpson et al.
New Dynamics (?) of J/ψJ/ψ and ΥΥ families from QCD Laplace sum rules at NLO
S. Narison, Andry Rabemananjara, D. Rabetiarivony
Transverse Tau Spin Correlations and the Weak Electric Dipole Moment at Future Z Factories
Xin-Yu Du, Zi-Yue Zou, Xiao-Gang He et al.
Addressing the S-wave scalar f0(1500)-resonance in quasi-four-body FCNC rare Bs f0(1500) ( π+ π- ) + - / ν ν decays
Xue Zheng, Hai-Bing Fu, Dan-Dan Hu et al.
Complete electroweak corrections to diphoton production via gluon fusion at the LHC
Long-Bin Chen, Zi-Qiang Chen, Hai Tao Li et al.
Baryon-to-meson ratios in the Lund jet plane: resolving string-junction and thermal-fragmentation effects
Robert Vertesi