论文标题
模糊暗物质的核心途径结构的分析方法
Analytical approach to core-halo structure of fuzzy dark matter
论文作者
论文摘要
称为模糊暗物质(FDM)的超轻骨化暗物质吸引了很多关注,以替代冷暗物质。 FDM模型的一个有趣特征是孤子核的存在,孤子芯是在光晕的中心形成的稳定致密核心。在本文中,我们通过求解大约求解schrödinger-Poisson方程来分析研究孤子核心特性对光晕特性的依赖性。为了关注地面本征功能,我们得出了孤子核半径的关键表达,从中,我们从中获得了与早期数值工作相似的核心质量关系,但涉及因子依赖于光晕浓度和宇宙学参数的因素。 Based on the new relations, we find that for a given cosmology, (i) there exist a theoretical bound on the radius and mass of soliton core for each halo mass (ii) incorporating the concentration-halo mass (C-M) relation into the predictions, the core-halo relations generally exhibit a non power-law behavior, and with the C-M relation suppressed at the low-mass scales, relevant to the FDM model, predictions tend to match the simulations well (iii)C-M关系中的散射在核心关系中产生相当大的分散体,并可以解释从宇宙学模拟中获得的结果。最后,对我们的分析治疗的有效性进行了严格的检查。一种扰动估计表明,核心关系关系的预测在广泛的参数空间中是有效的,并且分析计算中调用的近似值的影响很小,尽管它并不完全可以忽略不计。
Ultralight bosonic dark matter called fuzzy dark matter (FDM) has attracted much attention as an alternative to the cold dark matter. An intriguing feature of the FDM model is the presence of a soliton core, a stable dense core formed at the center of halos. In this paper, we analytically study the dependence of the soliton core properties on the halo characteristics by solving approximately the Schrödinger-Poisson equation. Focusing on the ground-state eigenfunction, we derive a key expression for the soliton core radius, from which we obtain the core-halo mass relations similar to those found in the early numerical work, but involving the factor dependent crucially on the halo concentration and cosmological parameters. Based on the new relations, we find that for a given cosmology, (i) there exist a theoretical bound on the radius and mass of soliton core for each halo mass (ii) incorporating the concentration-halo mass (C-M) relation into the predictions, the core-halo relations generally exhibit a non power-law behavior, and with the C-M relation suppressed at the low-mass scales, relevant to the FDM model, predictions tend to match the simulations well (iii) the scatter in the C-M relation produces a sizable dispersion in the core-halo relations, and can explain the results obtained from cosmological simulations. Finally, the validity of our analytical treatment are critically examined. A perturbative estimation suggests that the prediction of the core-halo relations is valid over a wide range of parameter space, and the impact of the approximation invoked in the analytical calculations is small, although it is not entirely negligible.