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具有热动力学苏尼亚耶夫-泽尔多维奇效应的宇宙学

Cosmology with the Thermal-Kinetic Sunyaev-Zel'dovich Effect.

作者信息

Coulton William, Ota Atsuhisa, van Engelen Alexander

机构信息

Institute of Astronomy and Kavli Institute for Cosmology Cambridge, Madingley Road, Cambridge CB3 0HA, United Kingdom.

Department of Applied Mathematics and Theoretical Physics, University of Cambridge, Cambridge CB3 0WA, United Kingdom.

出版信息

Phys Rev Lett. 2020 Sep 11;125(11):111301. doi: 10.1103/PhysRevLett.125.111301.

Abstract

Compton scattering of the cosmic microwave background (CMB) from hot ionized gas produces a range of effects, and the leading order effects are the kinetic and thermal Sunyaev Zel'dovich (kSZ and tSZ) effects. In the near future, CMB surveys will provide the precision to probe beyond the leading order effects. In this Letter, we study the cosmological information content of the next order term which combines the tSZ and kSZ effects, hereafter called the thermal-kinetic Sunyaev Zel'dovich (tkSZ) effect. As the tkSZ effect has the same velocity dependence as the kSZ effect, it will also have many of the useful properties of the kSZ effect. However, it also has its own, unique spectral dependence, which allows it to be isolated from all other CMB signals. We show that with currently envisioned CMB missions the tkSZ effect can be detected and can be used to reconstruct large scale velocity fields, with no appreciable bias from either the kSZ effect or other extragalactic foregrounds. Furthermore, since the tkSZ effect arises from the well-studied pressure of ionized gas, rather than the gas number density as in the kSZ effect, the degeneracy due to uncertain gas physics will be significantly reduced. Finally, for a very low-noise experiment the tkSZ effect will be measurable at higher precision than the kSZ effect.

摘要

宇宙微波背景(CMB)与热电离气体的康普顿散射会产生一系列效应,其中主要效应是动力学和热苏尼亚耶夫 - 泽尔多维奇(kSZ和tSZ)效应。在不久的将来,CMB巡天将具备探测超出主要效应的精度。在本信函中,我们研究了结合tSZ和kSZ效应的下一阶项的宇宙学信息内容,此后称为热动力学苏尼亚耶夫 - 泽尔多维奇(tkSZ)效应。由于tkSZ效应与kSZ效应具有相同的速度依赖性,它也将具有kSZ效应的许多有用特性。然而,它也有自己独特的光谱依赖性,这使其能够与所有其他CMB信号区分开来。我们表明,利用目前设想的CMB任务,可以检测到tkSZ效应,并可用于重建大规模速度场,且不会受到kSZ效应或其他河外前景的明显偏差影响。此外,由于tkSZ效应源于对电离气体压力的充分研究,而不是像kSZ效应那样源于气体数密度,因不确定气体物理性质导致的简并性将显著降低。最后,对于非常低噪声的实验,tkSZ效应将比kSZ效应以更高的精度进行测量。

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