论文标题
矮球星系对费尔米克暗物质的质量的新约束
New Constraints on the Mass of Fermionic Dark Matter from Dwarf Spheroidal Galaxies
论文作者
论文摘要
矮球星系是探测费米斯暗物质的性质的出色系统,因为它们高的暗物质相位空间密度。在这项工作中,我们审查,修改和改进以前的相位考虑因素,以获取费米金暗物质颗粒质量的下限。与以前的工作相比,结果的完善尤其是由于星系的牛仔裤分析显着改善。我们讨论了两种方法,以获得有关暗物质质量的相位界限,一种基于Pauli原理的独立界限,另一种是源自Liouville定理的应用。作为后一种情况的基准示例,我们得出了对热脱钩颗粒和(非)共同产生的无菌中微子的约束。使用Pauli原则,我们报告了一个独立于模型的下限,$ M \ geq 0.18 \,\ Mathrm {kev} $在68%Cl和$ m \ geq 0.13 \,\ Mathrm {kev} $ in 95%Cl。 For relativistically decoupled thermal relics, this bound is strengthened to $m \geq 0.59\,\mathrm{keV}$ at 68% CL and $m \geq 0.41\,\mathrm{keV}$ at 95% CL, whilst for non-resonantly produced sterile neutrinos the constraint is $m \geq 2.80 \,\ Mathrm {kev} $在68%Cl和$ m \ geq 1.74 \,\ Mathrm {kev} $ 95%Cl。最后,将产生的无菌中微子的相位空间边界与X射线,Lyman-$ lyman-$α$和大爆炸核合成观测值的互补极限进行了比较。
Dwarf spheroidal galaxies are excellent systems to probe the nature of fermionic dark matter due to their high observed dark matter phase-space density. In this work, we review, revise and improve upon previous phase-space considerations to obtain lower bounds on the mass of fermionic dark matter particles. The refinement in the results compared to previous works is realised particularly due to a significantly improved Jeans analysis of the galaxies. We discuss two methods to obtain phase-space bounds on the dark matter mass, one model-independent bound based on Pauli's principle, and the other derived from an application of Liouville's theorem. As benchmark examples for the latter case, we derive constraints for thermally decoupled particles and (non-)resonantly produced sterile neutrinos. Using the Pauli principle, we report a model-independent lower bound of $m \geq 0.18\,\mathrm{keV}$ at 68% CL and $m \geq 0.13\,\mathrm{keV}$ at 95% CL. For relativistically decoupled thermal relics, this bound is strengthened to $m \geq 0.59\,\mathrm{keV}$ at 68% CL and $m \geq 0.41\,\mathrm{keV}$ at 95% CL, whilst for non-resonantly produced sterile neutrinos the constraint is $m \geq 2.80\,\mathrm{keV}$ at 68% CL and $m \geq 1.74\,\mathrm{keV}$ at 95% CL. Finally, the phase-space bounds on resonantly produced sterile neutrinos are compared with complementary limits from X-ray, Lyman-$α$ and Big Bang Nucleosynthesis observations.