Gabriela Sato-Polito, J. Bernal, K. Boddy, M. Kamionkowski
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We show that while instruments currently under construction may reach a low-significance detection of kSZ tomography, next-generation experiments will achieve greater sensitivity, with a detection significance of $\\mathcal{O}(10^2-10^3)$. Due to sample-variance cancellation, the cross-correlation between the reconstructed velocity field from kSZ tomography and intensity fluctuations can improve measurements of %the scale-dependent bias contributions from new physics to the power spectrum at large scales. To illustrate this improvement, we consider models of the early Universe that induce primordial local-type non-gaussianity and correlated compensated isocurvature perturbations. We show that with CMB-S4 and an AtLAST-like survey, the uncertainty on $f_{\\rm NL}$ and $A_{\\rm CIP}$ can be reduced by a factor of $\\sim 3$, achieving $\\sigma(f_{\\rm NL}) \\lesssim 1$. We further show that probing both low and high redshifts is crucial to break the degeneracy between the two parameters.","PeriodicalId":8431,"journal":{"name":"arXiv: Cosmology and Nongalactic Astrophysics","volume":"164 1","pages":""},"PeriodicalIF":0.0000,"publicationDate":"2020-11-16","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"7","resultStr":"{\"title\":\"Kinetic Sunyaev-Zel’dovich tomography with line-intensity mapping\",\"authors\":\"Gabriela Sato-Polito, J. Bernal, K. Boddy, M. Kamionkowski\",\"doi\":\"10.1103/PHYSREVD.103.083519\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"The kinetic Sunyaev-Zel'dovich (kSZ) effect is a secondary cosmic microwave background (CMB) anisotropy induced by the scattering of CMB photons off intervening electrons. Through cross-correlations with tracers of large-scale structure, the kSZ effect can be used to reconstruct the 3-dimensional radial-velocity field, a technique known as kSZ tomography. We explore the cross-correlation between the CMB and line-intensity fluctuations to retrieve the late-time kSZ signal across a wide redshift range. We focus on the CII emission line, and predict the signal-to-noise ratio of the kSZ tomography signal between redshifts $z=1-5$ for upcoming experiments. We show that while instruments currently under construction may reach a low-significance detection of kSZ tomography, next-generation experiments will achieve greater sensitivity, with a detection significance of $\\\\mathcal{O}(10^2-10^3)$. 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引用次数: 7
摘要
动力学Sunyaev-Zel'dovich (kSZ)效应是宇宙微波背景(CMB)的二次各向异性,是由介入电子对CMB光子的散射引起的。通过与大尺度结构示踪剂的相互关联,kSZ效应可以用来重建三维径向速度场,这种技术被称为kSZ层析成像。我们探索了CMB与线强度波动之间的相互关系,以检索宽红移范围内的晚时间kSZ信号。我们将重点放在CII发射线上,并预测kSZ层析成像信号在红移之间的信噪比$z=1-5$,为接下来的实验做准备。我们表明,虽然目前正在建设的仪器可能达到kSZ层析成像的低显著性检测,但下一代实验将实现更高的灵敏度,检测显著性为$\mathcal{O}(10^2-10^3)$。由于样本方差抵消,kSZ层析成像重建的速度场与强度波动之间的相互关系可以改善测量 %the scale-dependent bias contributions from new physics to the power spectrum at large scales. To illustrate this improvement, we consider models of the early Universe that induce primordial local-type non-gaussianity and correlated compensated isocurvature perturbations. We show that with CMB-S4 and an AtLAST-like survey, the uncertainty on $f_{\rm NL}$ and $A_{\rm CIP}$ can be reduced by a factor of $\sim 3$, achieving $\sigma(f_{\rm NL}) \lesssim 1$. We further show that probing both low and high redshifts is crucial to break the degeneracy between the two parameters.
Kinetic Sunyaev-Zel’dovich tomography with line-intensity mapping
The kinetic Sunyaev-Zel'dovich (kSZ) effect is a secondary cosmic microwave background (CMB) anisotropy induced by the scattering of CMB photons off intervening electrons. Through cross-correlations with tracers of large-scale structure, the kSZ effect can be used to reconstruct the 3-dimensional radial-velocity field, a technique known as kSZ tomography. We explore the cross-correlation between the CMB and line-intensity fluctuations to retrieve the late-time kSZ signal across a wide redshift range. We focus on the CII emission line, and predict the signal-to-noise ratio of the kSZ tomography signal between redshifts $z=1-5$ for upcoming experiments. We show that while instruments currently under construction may reach a low-significance detection of kSZ tomography, next-generation experiments will achieve greater sensitivity, with a detection significance of $\mathcal{O}(10^2-10^3)$. Due to sample-variance cancellation, the cross-correlation between the reconstructed velocity field from kSZ tomography and intensity fluctuations can improve measurements of %the scale-dependent bias contributions from new physics to the power spectrum at large scales. To illustrate this improvement, we consider models of the early Universe that induce primordial local-type non-gaussianity and correlated compensated isocurvature perturbations. We show that with CMB-S4 and an AtLAST-like survey, the uncertainty on $f_{\rm NL}$ and $A_{\rm CIP}$ can be reduced by a factor of $\sim 3$, achieving $\sigma(f_{\rm NL}) \lesssim 1$. We further show that probing both low and high redshifts is crucial to break the degeneracy between the two parameters.