论文标题

KSZ层析成像的原始三光谱

Primordial trispectrum from kSZ tomography

论文作者

Kumar, Neha Anil, Sato-Polito, Gabriela, Kamionkowski, Marc, Hotinli, Selim C.

论文摘要

动力学Sunyaev Zel'Dovich效应是一种次级CMB温度各向异性,可对分布在整个宇宙中的物质的径向速度场进行强大的探针。通过将高分辨率CMB测量与Galaxy调查数据相结合,可以重建此速度场,并在线性方向上提供了无偏的物质扰动示踪剂。在本文中,我们展示了该测量方法如何用于探测本地类型的原始非高斯性,尤其是专注于三元素振幅$τ_{\ rm nl} $,这是我们通过插图提供的简单的两场膨胀模型中可能出现的。与偏置的大规模星系密度场的速度场衍生的物质分布相互相关,使人们可以通过取消样品方差来测量比例依赖性偏置因子。我们预测,对应于CMB-S4和VRO的配置会导致$σ_{f _ {\ rm nl}}} \大约0.59 $和$σ_{τ_{\ rm nl}}} \大约1.5 $。这些预测可预测$σ_{f _ {\ rm nl}} $ 10和195的改进因子和$σ_{τ_{τ_{\ rm nl}} $,分别使用单独使用VRO数据而无需进行内部样品差异而获得vro数据的灵敏度。同样,对于与Desi相对应的配置,我们预测$σ_{f _ {\ rm nl}} \大约3.1 $和$σ_{τ_{\ rm nl}} \大约69 $的灵敏度,大约是2和5,而不是2和5的使用。我们发现,高星系数密度和较大的调查量大大提高了我们在考虑的多场模型中探测原始三光谱幅度的能力。

The kinetic Sunyaev Zel'dovich effect is a secondary CMB temperature anisotropy that provides a powerful probe of the radial-velocity field of matter distributed across the Universe. This velocity field is reconstructed by combining high-resolution CMB measurements with galaxy survey data, and it provides an unbiased tracer of matter perturbations in the linear regime. In this paper, we show how this measurement can be used to probe primordial non-Gaussianity of the local type, particularly focusing on the trispectrum amplitude $τ_{\rm NL}$, as may arise in a simple two-field inflation model that we provide by way of illustration. Cross-correlating the velocity-field-derived matter distribution with the biased large-scale galaxy density field allows one to measure the scale-dependent bias factor with sample variance cancellation. We forecast that a configuration corresponding to CMB-S4 and VRO results in a sensitivity of $σ_{f_{\rm NL}} \approx 0.59$ and $σ_{τ_{\rm NL}} \approx 1.5$. These forecasts predict improvement factors of 10 and 195 for $σ_{f_{\rm NL}}$ and $σ_{τ_{\rm NL}}$, respectively, over the sensitivity using VRO data alone, without internal sample variance cancellation. Similarly, for a configuration corresponding to DESI and SO, we forecast a sensitivity of $σ_{f_{\rm NL}} \approx 3.1$ and $σ_{τ_{\rm NL}} \approx 69$, with improvement factors of 2 and 5, respectively, over the use of the DESI data-set in isolation. We find that a high galaxy number density and large survey volume considerably improve our ability to probe the amplitude of the primordial trispectrum for the multi-field model considered.

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