A Truncated Primordial Power Spectrum and Its Impact on B-Mode Polarization (2404.08170v1)
Abstract: The absence of large-angle correlations in the temperature of the cosmic microwave background (CMB), confirmed by three independent satellite missions, creates significant tension with the standard model of cosmology. Previous work has shown, however, that a truncation, $k_{min}$, of the primordial power spectrum comprehensively resolves the anomaly and the missing power at $\ell\lesssim 5$ (the low multipoles). Since this cutoff is consistent with the hypothesized delay of inflation well beyond the Planck time, we are strongly motivated to consider its possible impact on other observational signatures. In this Letter, we analyze and predict its influence on the most revealing probe awaiting measurement by upcoming missions -- the B-mode polarization of the CMB, whose accurate determination should greatly impact the inflationary picture. We highlight the quantitative power of this discriminant by specifically considering the LiteBIRD mission, predicting the effect of $k_{min}$ on both the angular power spectrum and the angular correlation function of the B-mode, for a range of tensor-to-scalar ratios, $r$. While its impact on the latter appears to be negligible, $k_{\rm min}$ should have a very pronounced effect on the former. We show that for $r=0.036$, $k_{min}$'s impact on $C_{\ell}{BB}$ at low $\ell$'s should be easily detectable by LiteBIRD, but will be largely hidden by the total uncertainty of the measurement if $r\lesssim 0.02$.
- A. A. Starobinskiǐ, Spectrum of relict gravitational radiation and the early state of the universe, Soviet Journal of Experimental and Theoretical Physics Letters 30 (1979) 682.
- D. Kazanas, Dynamics of the universe and spontaneous symmetry breaking, ApJ Letters 241 (1980) L59–L63. doi:10.1086/183361.
- A. H. Guth, Inflationary universe: A possible solution to the horizon and flatness problems, PRD 23 (1981) 347–356. doi:10.1103/PhysRevD.23.347.
- A. D. Linde, A new inflationary universe scenario: A possible solution of the horizon, flatness, homogeneity, isotropy and primordial monopole problems, Physics Letters B 108 (1982) 389–393. doi:10.1016/0370-2693(82)91219-9.
- Planck 2013 results. XVI. Cosmological parameters, A&A 571 (2014) A16. doi:10.1051/0004-6361/201321591. arXiv:1303.5076.
- Inflationary paradigm in trouble after Planck2013, Physics Letters B 723 (2013) 261–266. doi:10.1016/j.physletb.2013.05.023. arXiv:1304.2785.
- Inflationary schism, Physics Letters B 736 (2014) 142–146. doi:10.1016/j.physletb.2014.07.012. arXiv:1402.6980.
- Two-Point Correlations in the COBE DMR Four-Year Anisotropy Maps, ApJ Letters 464 (1996) L25. doi:10.1086/310076. arXiv:astro-ph/9601061.
- First-Year Wilkinson Microwave Anisotropy Probe (WMAP) Observations: Foreground Emission, ApJ Supplements 148 (2003) 97–117. doi:10.1086/377252. arXiv:astro-ph/0302208.
- Planck 2018 results. VI. Cosmological parameters, A&A 641 (2020) A6. doi:10.1051/0004-6361/201833910. arXiv:1807.06209.
- No large-angle correlations on the non-Galactic microwave sky, MNRAS 399 (2009) 295–303. doi:10.1111/j.1365-2966.2009.15270.x. arXiv:0808.3767.
- F. Melia, M. López-Corredoira, Evidence of a truncated spectrum in the angular correlation function of the cosmic microwave background, A&A 610 (2018) A87. doi:10.1051/0004-6361/201732181. arXiv:1712.07847.
- J. Liu, F. Melia, Viability of slow-roll inflation in light of the non-zero kmin𝑚𝑖𝑛{}_{min}start_FLOATSUBSCRIPT italic_m italic_i italic_n end_FLOATSUBSCRIPT measured in the cosmic microwave background power spectrum, Proceedings of the Royal Society of London Series A 476 (2020) 20200364. doi:10.1098/rspa.2020.0364. arXiv:2006.02510.
- Efficient Computation of Cosmic Microwave Background Anisotropies in Closed Friedmann-Robertson-Walker Models, ApJ 538 (2000) 473–476. doi:10.1086/309179. arXiv:astro-ph/9911177.
- Probing cosmic inflation with the LiteBIRD cosmic microwave background polarization survey, Progress of Theoretical and Experimental Physics 2023 (2023) 042F01. doi:10.1093/ptep/ptac150. arXiv:2202.02773.
- Spontaneous creation of almost scale-free density perturbations in an inflationary universe, PRD 28 (1983) 679–693. doi:10.1103/PhysRevD.28.679.
- M. Zaldarriaga, U. Seljak, All-sky analysis of polarization in the microwave background, PRD 55 (1997) 1830–1840. doi:10.1103/PhysRevD.55.1830. arXiv:astro-ph/9609170.
- A. Kosowsky, Cosmic microwave background polarization., Annals of Physics 246 (1996) 49–85. doi:10.1006/aphy.1996.0020. arXiv:astro-ph/9501045.
- A. G. Polnarev, Polarization and Anisotropy Induced in the Microwave Background by Cosmological Gravitational Waves, Soviet Astronomy 29 (1985) 607–613.
- Microwave background polarization as a probe of large-angle correlations, PRD 91 (2015) 123504. doi:10.1103/PhysRevD.91.123504. arXiv:1503.05928.
- Hint of a truncated primordial spectrum from the CMB large-scale anomalies, A&A 655 (2021) A70. doi:10.1051/0004-6361/202141251. arXiv:2109.05480.
- J. Liu, F. Melia, Challenges to Inflation in the post-Planck Era, ApJ In press (2024).
- Planck constraints on the tensor-to-scalar ratio, A&A 647 (2021) A128. doi:10.1051/0004-6361/202039585. arXiv:2010.01139.
- W. Hu, Weak lensing of the CMB: A harmonic approach, PRD 62 (2000) 043007. doi:10.1103/PhysRevD.62.043007. arXiv:astro-ph/0001303.