论文标题
推断暗物质subhalos的浓度强烈透明的图像
Inferring the concentration of dark matter subhalos perturbing strongly lensed images
论文作者
论文摘要
我们证明,低质量暗物质Subhalos对强烈镜头图像的扰动受到扰动subhalo的浓度的显着影响。对于$λ$ CDM中预期的次荷兰浓度,可以在HST分辨率上获得大于$ 10^{10} m_ \ odot $的Subhalos的浓度的显着约束。如果较低的质量subhalos的浓度高于CDM中的预期散射,则可能会受到限制。我们还发现,低质量遗物的浓度降低至$ \ sim 10^8m_ \ odot $,可以通过$ \ sim 0.01''$的分辨率得到很好的约束,这是可以通过长基线干扰法实现的。 Subhalo浓度在扰动的可检测性中也起着至关重要的作用,因此,在HST分辨率下,只能检测到具有质量$ $ \ lyssim 10^9m_ \ odot $的高浓度捕获者。如果在镜头建模期间不考虑$λ$ CDM质量浓度关系中的散布,则推断的Subhalo质量可以偏向3(6)倍的质量$ 10^9 m_ \ odot $($ 10^{10^{10} m_ \ odot $);如果在晶状体拟合期间质量和浓度都不同,则可以消除这种偏差。另外,人们可以坚固地推断出subhalo扰动半径内的投影质量,该质量由其与镜头扰动的临界曲线的距离所定义。有了足够数量的检测,这些策略将使低质量的光环质量浓度关系除了质量功能之外,还可以限制halo质量浓度的关系,提供暗物质物理学以及小规模的原始功率谱。
We demonstrate that the perturbations of strongly lensed images by low-mass dark matter subhalos are significantly impacted by the concentration of the perturbing subhalo. For subhalo concentrations expected in $Λ$CDM, significant constraints on the concentration can be obtained at HST resolution for subhalos with masses larger than about $10^{10}M_\odot$. Constraints are also possible for lower mass subhalos, if their concentrations are higher than the expected scatter in CDM. We also find that the concentration of lower mass perturbers down to $\sim 10^8M_\odot$ can be well-constrained with a resolution of $\sim 0.01''$, which is achievable with long-baseline interferometry. Subhalo concentration also plays a critical role in the detectability of a perturbation, such that only high concentration perturbers with mass $\lesssim 10^9M_\odot$ are likely to be detected at HST resolution. If scatter in the $Λ$CDM mass-concentration relation is not accounted for during lens modeling, the inferred subhalo mass can be biased by up to a factor of 3(6) for subhalos of mass $10^9 M_\odot$($10^{10} M_\odot$); this bias can be eliminated if one varies both mass and concentration during lens fitting. Alternatively, one may robustly infer the projected mass within the subhalo's perturbation radius, defined by its distance to the critical curve of the lens being perturbed. With a sufficient number of detections, these strategies will make it possible to constrain the halo mass-concentration relation at low masses in addition to the mass function, offering a probe of dark matter physics as well as the small-scale primordial power spectrum.