论文标题
关于GROSS-PITAEVSKII理论中的粒子散射及其对暗物质光晕的影响
On particle scattering in Gross-Pitaevskii theory and implications for dark matter halos
论文作者
论文摘要
Bose-Einstein引起的暗物质(BEC-DM),也称为标量场暗物质(SFDM),由于其长期存在的潜力解决了CDM的小规模危机,因此已成为标准,无碰撞的无碰撞暗物质(CDM)模型的流行替代品。由BEC-DM制成的光环已使用与泊松方程相连的Gross-Pitaevskii(GP)方程进行了建模。所谓的GPP运动方程。这些方程基于基本的微物理条件,需要实现,以使方程首先有效,这与DM气体的稀释性和粒子散射模型的性质有关。我们使用这些条件来得出对BEC-DM参数的影响,2粒子的自相互作用耦合强度$ g $和粒子质量$ m $。我们将派生的边界与限制因素进行了比较,该界限是由于Halos中央核心的病毒平衡而产生的,从而得出了连接$ G $和$ M $的关系。我们发现,如果这种模型也遵守最强大的约束,则可以极大地满足GPP的条件,因为BEC-DM粒子质量。我们还基于GPP的散射模型来得出对BEC-DM光晕的弹性散射横截面(每个粒子质量)的含义,并根据自我交互制度找到了大量可能的值。我们将结果置于最近的文献中,该文献预测了BEC-DM Halos中的Sub-KPC核心大小。
Bose-Einstein-condensed dark matter (BEC-DM), also called scalar field dark matter (SFDM), has become a popular alternative to the standard, collisionless cold dark matter (CDM) model, due to its long-held potential to resolve the small-scale crisis of CDM. Halos made of BEC-DM have been modelled using the Gross-Pitaevskii (GP) equation coupled to the Poisson equation; the so-called GPP equations of motion. These equations are based on fundamental microphysical conditions that need to be fulfilled in order for the equations to be valid in the first place, related to the diluteness of the DM gas and the nature of the particle scattering model. We use these conditions in order to derive the implications for the BEC-DM parameters, the 2-particle self-interaction coupling strength $g$ and the particle mass $m$. We compare the derived bounds with the constraint that results from the assumption of virial equilibrium of the central cores of halos, deriving a relationship that connects $g$ and $m$. We find that the GPP conditions are greatly fulfilled, for BEC-DM particle masses of interest, if such models also obey the virial condition that turns out to be the strongest constraint. We also derive the implications for the elastic scattering cross section (per particle mass) in BEC-DM halos, based on the scattering model of GPP, and find a huge range of possible values, depending on the self-interaction regime. We put our results into context to recent literature which predicts sub-kpc core size in BEC-DM halos.