论文标题
Messier 87*的模拟线性极化图像中的光子环对称性
Photon Ring Symmetries in Simulated Linear Polarization Images of Messier 87*
论文作者
论文摘要
事件地平线望远镜(EHT)最近发布了第一个线性极化图像,即超大型黑洞Messier 87*,此后\ m {}。在EHT图像中发现的螺旋极化模式有利于磁性停滞的磁盘(MAD)作为EHT图像的解释。随着在地平线上对非常长的基线干涉法(VLBI)的下一代改进,了解高度镜头结构中的相似极化特征,即“光子环”,其中光子在到达观察者之前对黑洞产生了多个半孔,对未来图像的分析至关重要。最近的工作表明,该图像区域可以相对于更直接的发射进行去极化。我们通过在\ m {}吸积系统的模拟图像的EHT库中分解光子半孔来扩展这种观察结果,并发现疯狂模拟的图像显示了可归因于对抗螺旋电场矢量破坏性干扰的光子环的相对去极化;这种抗对称性纯粹是由强力透镜引起的,相对于直接图像,在光子环区域中最多可产生$ {\ sim} 50 \%$ demalalization。在没有磁性停滞的系统中,除了具有高自旋和离子和相等温度的电子的系统外,我们发现高度镜头的间接子图像几乎完全去极化,从而在完整图像中导致光子环区域的适度去极化。我们预测,\ m {}极化的下一代EHT观察应共同限制黑洞自旋以及基础发射和磁场几何形状。
The Event Horizon Telescope (EHT) recently released the first linearly polarized images of the accretion flow around the supermassive black hole Messier 87*, hereafter \m{}. The spiraling polarization pattern found in EHT images favored magnetically arrested disks (MADs) as the explanation for the EHT image. With next-generation improvements to very long baseline interferometry (VLBI) on the horizon, understanding similar polarized features in the highly lensed structure known as the "photon ring," where photons make multiple half-orbits about the black hole before reaching the observer, will be critical to analysis of future images. Recent work has indicated that this image region may be depolarized relative to more direct emission. We expand this observation by decomposing photon half-orbits in the EHT library of simulated images of the \m{} accretion system and find that images of MAD simulations show a relative depolarization of the photon ring attributable to destructive interference of oppositely spiraling electric field vectors; this antisymmetry, which arises purely from strong gravitational lensing, can produce up to ${\sim}50\%$ depolarization in the photon ring region with respect to the direct image. In systems that are not magnetically arrested and with the exception of systems with high spin and ions and electrons of equal temperature, we find that highly lensed indirect sub-images are almost completely depolarized, causing a modest depolarization of the photon ring region in the complete image. We predict that next-generation EHT observations of \m{} polarization should jointly constrain the black hole spin and the underlying emission and magnetic field geometry.