论文标题

黑洞积聚盘发射的光谱和极化特性:包括吸收效应

Spectral and polarization properties of black hole accretion disc emission: including absorption effects

论文作者

Taverna, Roberto, Marra, Lorenzo, Bianchi, Stefano, Dovciak, Mičhal, Goosmann, René, Marin, Frederic, Matt, Giorgio, Zhang, Wenda

论文摘要

从黑洞积聚盘发出的辐射的研究是理解这些来源的主要物理特性,尤其是黑洞旋转的至关重要方法。除了光谱分析外,偏振法的发展越来越重要,这是由新技术的开发所激发的,这些技术很快就可以在X射线和γ射线中进行测量。实际上,从柔软状态下的黑洞积聚盘发出的光子确实有望是极化的,其能量依赖性可以提供黑洞自旋的估计。然而,到目前为止执行的计算将散射视为确定发射辐射的极化状态的唯一过程,该过程隐含地假设所涉及的温度使光盘中的材料完全离子化。在这项工作中,我们通过使用蒙特卡洛代码stokes来确定新兴辐射的极化属性,然后确定新兴辐射的极化属性,从而概括了问题。这使我们可以考虑吸收效果与散射效应。我们表明,包括吸收可以根据纯散射极限在纯散射极限中获得的辐射的极化特性。通常,我们发现当吸收更重要时,极化度更大,例如对于低积聚率和/或旋转时,当该物质在最内部的积聚盘区域的电离远非完整时。

The study of radiation emitted from black hole accretion discs represents a crucial way to understand the main physical properties of these sources, and in particular the black hole spin. Beside spectral analysis, polarimetry is becoming more and more important, motivated by the development of new techniques which will soon allow to perform measurements also in the X- and γ-rays. Photons emitted from black hole accretion discs in the soft state are indeed expected to be polarized, with an energy dependence which can provide an estimate of the black hole spin. Calculations performed so far, however, considered scattering as the only process to determine the polarization state of the emitted radiation, implicitly assuming that the temperatures involved are such that material in the disc is entirely ionized. In this work we generalize the problem by calculating the ionization structure of a surface layer of the disc with the public code CLOUDY , and then by determining the polarization properties of the emerging radiation using the Monte Carlo code STOKES . This allows us to account for absorption effects alongside scattering ones. We show that including absorption can deeply modify the polarization properties of the emerging radiation with respect to what is obtained in the pure-scattering limit. As a general rule, we find that the polarization degree is larger when absorption is more important, which occurs e.g. for low accretion rates and/or spins when the ionization of the matter in the innermost accretion disc regions is far from complete.

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