论文标题

矮星系中超轻玻色粒暗物质的生存能力

The viability of ultralight bosonic dark matter in dwarf galaxies

论文作者

Goldstein, Isabelle S., Koushiappas, Savvas M., Walker, Matthew G.

论文摘要

矮星系中的暗物质分布拥有有关暗物质粒子的基本特性和相互作用的大量信息。在本文中,我们研究了超轻质的骨气暗物质是否与从恒星运动学中提取的重力潜力一致。我们使用速度分散测量来限制光环质量和颗粒质量的模型。后验可能性是多模式的。 $ m \ sim 10^{ - 22} {\ rm {ev}} $的粒子质量需要超过$ \ sim 10^{10} m_ \ odot $的质量,而$ m \ gtrsim的粒子质量$ \ gtrsim 10^{-20} { - 20} {\ rm {ev} $ a n sim a n os a n halos a n halos faim-sim a n os faim-sim a n halos faim-sim a n os faim-sim a n os n halos- 10^{9}] m_ \ odot $,其行为与冷暗物质相似。无论粒子质量如何,如果恒星动力学受到质量的中央黑洞的影响,则允许下光晕质量最多$ \ sim 10^{ - 2} $宿主光晕质量。我们发现对包含黑洞的模型不偏爱不包含黑洞的模型。我们的主要结论是,模糊的暗物质粒子质量必须为$ m \ gtrsim 10^{ - 20} $ eV,或者鉴于银河系的预期层次结构组装,或者银河系必须矮小的方式矮小的方式,或者是矮小的方式必须矮小的方式矮矮人。我们没有发现最后两种可能性中的任何一种证据,并且认为它们不太可能。

The dark matter distribution in dwarf galaxies holds a wealth of information on the fundamental properties and interactions of the dark matter particle. In this paper, we study whether ultralight bosonic dark matter is consistent with the gravitational potential extracted from stellar kinematics. We use velocity dispersion measurements to constrain models for halo mass and particle mass. The posterior likelihood is multimodal. Particle masses of order $m\sim 10^{-22} {\rm{eV}}$ require halos of mass in excess of $\sim 10^{10} M_\odot$, while particle mass of order $m \gtrsim 10^{-20}{\rm{eV}}$ are favored by halos of mass $\sim [10^{8} - 10^{9}] M_\odot$, with a similar behavior to cold dark matter. Regardless of particle mass, the lower halo masses are allowed if stellar dynamics are influenced by the presence of a central black hole of mass at most $\sim 10^{-2}$ the host halo mass. We find no preference for models that contain a black hole over models that do not contain a black hole. Our main conclusion is that either the fuzzy dark matter particle mass must be $m \gtrsim 10^{-20}$ eV, or the Milky Way dwarfs must be unusually heavy given the expected hierarchical assembly of the Milky Way, or the Milky Way dwarfs must contain a central black hole. We find no evidence for either of the last two possibilities and consider them unlikely.

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