论文标题
通过各向异性宇宙双折射的断层扫描来探测斧头
Probing Axions through Tomography of Anisotropic Cosmic Birefringence
论文作者
论文摘要
当考虑麦克斯韦电气磁化的理论上动机良好的平价扩展时,宇宙双折射是通过宇宙微波背景(CMB)辐射的光子经历的线性极化平面的旋转。如果该旋转的参数化的角度取决于光子的方向,则该现象称为各向异性宇宙双折射(ACB)。在本文中,我们首次通过考虑在重组和电离时期发出的光子来进行ACB的层析成像处理。这允许人们提取有关各向同性病例的宇宙双折射的物理来源的其他补充信息。我们在这里专注于类似轴的场$χ$的情况,其与电磁扇区的耦合通过使用分析和数值方法(涉及类代码的修改)诱导这种现象。我们发现,宇宙双折射的各向异性成分表现出奇特的行为:轴突质量的增加意味着增加各向异性振幅,从而可以探究相对于纯粹的同性恋案例的质量更大。此外,我们表明,在较大的角度尺度上,电离和重组对ACB的贡献之间的相互作用对轴支质量很敏感,因此,在足够低的多物体下,为了足够的轻度质量,电离的贡献超过了重新组合,从而超过了重新组合,从而使层析成像方法成为宇宙双重型号的质量型工具,使得对这种特性进行了这种型号的型物质。
Cosmic birefringence is the in-vacuo rotation of the linear polarization plane experienced by photons of the Cosmic Microwave Background (CMB) radiation when theoretically well-motivated parity-violating extensions of Maxwell electromagnetism are considered. If the angle, parametrizing such a rotation is dependent on the photon's direction, then this phenomenon is called Anisotropic Cosmic Birefringence (ACB). In this paper, we perform for the first time a tomographic treatment of the ACB, by considering photons emitted both at the recombination and reionization epoch. This allows one to extract additional and complementary information about the physical source of cosmic birefringence with respect to the isotropic case. We focus here on the case of an axion-like field $χ$, whose coupling with the electromagnetic sector induces such a phenomenon, by using an analytical and numerical approach (which involves a modification of the CLASS code). We find that the anisotropic component of cosmic birefringence exhibits a peculiar behavior: an increase of the axion mass implies an enhancement of the anisotropic amplitude, allowing to probe a wider range of masses with respect to the purely isotropic case. Moreover, we show that at large angular scales, the interplay between the reionization and recombination contributions to ACB is sensitive to the axion mass, so that at sufficiently low multipoles, for sufficiently light masses, the reionization contribution overtakes the recombination one, making the tomographic approach to cosmic birefringence a promising tool for investigating the properties of this axion-like field.