ﻻ يوجد ملخص باللغة العربية
We study a generic model in which the dark sector is composed of a Majorana dark matter $chi_1$, its excited state $chi_2$, both at the electroweak scale, and a light dark photon $Z$ with $m_{Z} sim 10^{-4}$ eV. The light $Z$ enhances the self-scattering elastic cross section $chi_1 chi_1 to chi_1 chi_1$ enough to solve the small scale problems in the $N$-body simulations with the cold dark matter. The dark matter communicates with the SM via kinetic mixing parameterized by $epsilon$. The inelastic scattering process $chi_1 chi_1 to chi_2 chi_2$ followed by the prompt decay $chi_2 to chi_1 Z$ generates energetic $Z$. By setting $delta equiv m_{chi_2} - m_{chi_1} simeq 2.8$ keV and $epsilon sim 10^{-10}$ the excess in the electron-recoil data at the XENON1T experiment can be explained by the dark photoelectric effect. The relic abundance of the dark matter can also be accommodated by the thermal freeze-out mechanism via the annihilation $chi_1 chi_1 (chi_2 chi_2) to Z Z$ with the dark gauge coupling constant $alpha_X sim 10^{-3}$.
We propose a self-interacting inelastic dark matter (DM) scenario as a possible origin of the recently reported excess of electron recoil events by the XENON1T experiment. Two quasi-degenerate Majorana fermion DM interact within themselves via a ligh
Very recently, the Xenon1T collaboration has reported an intriguing electron recoil excess, which may imply for light dark matter. In order to interpret this anomaly, we propose the atmospheric dark matter (ADM) from the inelastic collision of cosmic
We show that the electron recoil excess around 2 keV claimed by the Xenon collaboration can be fitted by DM or DM-like particles having a fast component with velocity of order $sim 0.1$. Those particles cannot be part of the cold DM halo of our Galax
We propose a self-interacting boosted dark matter (DM) scenario as a possible origin of the recently reported excess of electron recoil events by the XENON1T experiment. The Standard Model has been extended with two vector-like fermion singlets charg
We propose boosted dark matter (BDM) as a possible explanation for the excess of keV electron recoil events observed by XENON1T. BDM particles have velocities much larger than those typical of virialized dark matter, and, as such, BDM-electron scatte