In the quest for the faint primordial B-mode polarization of the Cosmic Microwave Background, three are the key requirements for any present or future experiment: an utmost sensitivity, excellent control over instrumental systematic effects and over Galactic foreground contamination. Bolometric Interferometry (BI) is a novel technique that matches them all by combining the sensitivity of bolometric detectors, the control of instrumental systematics from interferometry and a software-based, tunable, in-band spectral resolution due to its ability to perform band-splitting during data analysis (spectral imaging). In this paper, we investigate how the spectral imaging capability of BI can help in detecting residual contamination in case an over-simplified model of foreground emission is assumed in the analysis. To mimic this situation, we focus on the next generation of ground-based CMB experiment, CMB-S4, and compare its anticipated sensitivities, frequency and sky coverage with a hypothetical version of the same experiment based on BI, CMB-S4/BI, assuming that line-of-sight (LOS) frequency decorrelation is present in dust emission but is not accounted for during component separation. We show results from a Monte-Carlo analysis based on a parametric component separation method (FGBuster), highlighting how BI has the potential to diagnose the presence of foreground residuals in estimates of the tensor-to-scalar ratio r in the case of unaccounted Galactic dust LOS frequency decorrelation.

Manzan, E., Regnier, M., Hamilton, J., Mennella, A., Errard, J., Zapelli, L., et al. (2024). The advantage of Bolometric Interferometry for controlling Galactic foreground contamination in CMB primordial Bmodes measurements. In 3rd Observing the Universe at mm Wavelengths, mm Universe 2023 (pp.1-6). EDP Sciences [10.1051/epjconf/202429300029].

The advantage of Bolometric Interferometry for controlling Galactic foreground contamination in CMB primordial Bmodes measurements

Gervasi M.;Zannoni M.
2024

Abstract

In the quest for the faint primordial B-mode polarization of the Cosmic Microwave Background, three are the key requirements for any present or future experiment: an utmost sensitivity, excellent control over instrumental systematic effects and over Galactic foreground contamination. Bolometric Interferometry (BI) is a novel technique that matches them all by combining the sensitivity of bolometric detectors, the control of instrumental systematics from interferometry and a software-based, tunable, in-band spectral resolution due to its ability to perform band-splitting during data analysis (spectral imaging). In this paper, we investigate how the spectral imaging capability of BI can help in detecting residual contamination in case an over-simplified model of foreground emission is assumed in the analysis. To mimic this situation, we focus on the next generation of ground-based CMB experiment, CMB-S4, and compare its anticipated sensitivities, frequency and sky coverage with a hypothetical version of the same experiment based on BI, CMB-S4/BI, assuming that line-of-sight (LOS) frequency decorrelation is present in dust emission but is not accounted for during component separation. We show results from a Monte-Carlo analysis based on a parametric component separation method (FGBuster), highlighting how BI has the potential to diagnose the presence of foreground residuals in estimates of the tensor-to-scalar ratio r in the case of unaccounted Galactic dust LOS frequency decorrelation.
paper
n
English
3rd Observing the Universe at mm Wavelengths, mm Universe 2023 - 26 June 2023 through 30 June 2023
2023
Mayet, F; Catalano, A; Macias-Perez, JF; Perotto, L
3rd Observing the Universe at mm Wavelengths, mm Universe 2023
9782759891252
28-mar-2024
2024
293
1
6
00029
open
Manzan, E., Regnier, M., Hamilton, J., Mennella, A., Errard, J., Zapelli, L., et al. (2024). The advantage of Bolometric Interferometry for controlling Galactic foreground contamination in CMB primordial Bmodes measurements. In 3rd Observing the Universe at mm Wavelengths, mm Universe 2023 (pp.1-6). EDP Sciences [10.1051/epjconf/202429300029].
File in questo prodotto:
File Dimensione Formato  
unpaywall-bitstream--658680547.pdf

accesso aperto

Tipologia di allegato: Publisher’s Version (Version of Record, VoR)
Licenza: Creative Commons
Dimensione 543.56 kB
Formato Adobe PDF
543.56 kB Adobe PDF Visualizza/Apri

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/10281/537122
Citazioni
  • Scopus 0
  • ???jsp.display-item.citation.isi??? 0
Social impact