论文标题
Schwarzschild的重力镜头,并充满了充电的黑洞,沉浸在完美的液体暗物质光环中
Gravitational Lensing of Schwarzschild and Charged Black Holes Immersed in Perfect Fluid Dark Matter Halo
论文作者
论文摘要
暗物质和深色能量主导着我们宇宙的行为。暗物质通常在大量星系中形成光环结构。从重力透镜观测值中可以揭示和理解暗晕的性质。在这项工作中,提出了一项关于浸入暗物质光环的黑洞重力镜头的全面研究。为了用简单的方式有效地建模星系中心(被暗光晕包围)中的超大质量黑洞,我们研究了Schwarzschild Black Hole和带电的Reissner-Nordström黑洞,沉浸在完美的液体暗物质光环中。在目前的工作中,计算并在分析和数值上计算重力透镜(光,光子球,黑洞阴影半径,引力透镜方程和爱因斯坦环)的几个基本量(光子球,黑洞阴影半径,重力透镜方程和爱因斯坦环)的几个基本量。在弱挠度极限中获得了重力挠度角的二阶分析膨胀,并且在数值上也计算出适用于弱和强挠度限制的全部重力偏转角(包括适用于弱和强偏转极限的所有阶扰动贡献)。它使我们能够分析对重力偏转角和重力镜头超出领先顺序的完美液体暗物质的影响,在先前的作品中未充分研究。假设$ m \simλ_{\ text {dm}} \ sim q $,我们的结果表明,暗物质可以极大地影响中央黑洞的重力镜头。
Dark matter and dark energy dominate the behavior of our universe. The dark matter usually forms halo structures in large number of galaxies. Properties of dark matter halo can be revealed and understood from the gravitational lensing observations. In this work, a comprehensive study on the gravitational lensing of black holes immersed in dark matter halos is presented. To effectively model the supermassive black hole in a galaxy center (which is surrounded by dark matter halo) in a simple way, we investigate the Schwarzschild black hole and charged Reissner-Nordström black hole immersed in a perfect fluid dark matter halo. In the present work, several basic quantities in gravitational lensing (the gravitational deflection angle of light, photon sphere, black hole shadow radius, gravitational lens equation and Einstein ring) are calculated and analyzed analytically and numerically. A second order analytical expansion of gravitational deflection angle is obtained in the weak deflection limit, and the full gravitational deflection angle (including all order perturbation contributions applicable to both weak and strong deflection limits) is also calculated numerically as comparisons. It enables us to analyze the perfect fluid dark matter influences on gravitational deflection angle and gravitational lensing beyond the leading order, which were not sufficiently studied in previous works. Assuming $M \sim λ_{\text{DM}} \sim Q$, our results show that dark matter can greatly influence the gravitational lensing of central black holes.