论文标题

扩展中子星形区域的强度和极化特性

Intensity and Polarization Characteristics of Extended Neutron Star Surface Regions

论文作者

Hu, Kun, Baring, Matthew G., Barchas, Joseph A., Younes, George

论文摘要

由于存在强磁场,因此中子星的表面是强化软X射线的来源。通过电子散射和自由吸收介导的辐射转移对于定义局部表面各向异性和极化特征至关重要。线性和圆极化之间复杂的相互作用对散射转运的影响很大。这种复杂性已被捕获在复杂的磁性汤姆森散射模拟中,我们最近开发了为这种紧凑的物体中完全离子大气的外层建模,迄今为止,重点介绍了局部表面区域的案例研究。然而,观察到的强度脉冲曲线的解释及其在约束关键中子星星几何参数中的功效取决于从扩展表面区域添加发射。在本文中,使用我们的传输模拟确定了这种扩展大气的强度,各向异性和极化特性,跨越了相当大的磁性结肠。这些构成了在不同磁场强度和方向相对于局部Zenith的不同磁场强度和方向的stokes参数信息的各种特性的卷积。我们的分析包括从地表到无穷大的观察者的光的完全相对论传播。强度和极化的脉冲轮廓阵列表明了恒星几何形状的强大探针。当在各种地表场方向上总结10-60%范围内的显着相位分辨的极化度。这些结果为观察结果提供了重要的背景,可以通过NASA的新IXPE X射线极化任务获得。

The surfaces of neutron stars are sources of strongly polarized soft X rays due to the presence of strong magnetic fields. Radiative transfer mediated by electron scattering and free-free absorption is central to defining local surface anisotropy and polarization signatures. Scattering transport is strongly influenced by the complicated interplay between linear and circular polarizations. This complexity has been captured in a sophisticated magnetic Thomson scattering simulation we recently developed to model the outer layers of fully-ionized atmospheres in such compact objects, heretofore focusing on case studies of localized surface regions. Yet, the interpretation of observed intensity pulse profiles and their efficacy in constraining key neutron star geometry parameters is critically dependent upon adding up emission from extended surface regions. In this paper, intensity, anisotropy and polarization characteristics from such extended atmospheres, spanning considerable ranges of magnetic colatitudes, are determined using our transport simulation. These constitute a convolution of varied properties of Stokes parameter information at disparate surface locales with different magnetic field strengths and directions relative to the local zenith. Our analysis includes full general relativistic propagation of light from the surface to an observer at infinity. The array of pulse profiles for intensity and polarization presented highlights how powerful probes of stellar geometry are possible. Significant phase-resolved polarization degrees in the range of 10-60% are realized when summing over a variety of surface field directions. These results provide an important background for observations to be acquired by NASA's new IXPE X-ray polarimetry mission.

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