Impact of half-wave plate systematics on the measurement of CMB -mode polarization
arXiv:2311.07999 · doi:10.1088/1475-7516/2024/05/018
Abstract
Polarization of the cosmic microwave background (CMB) can help probe the fundamental physics behind cosmic inflation via the measurement of primordial modes. As this requires exquisite control over instrumental systematics, some next-generation CMB experiments plan to use a rotating half-wave plate (HWP) as polarization modulator. However, the HWP non-idealities, if not properly treated in the analysis, can result in additional systematics. In this paper, we present a simple, semi-analytical end-to-end model to propagate the HWP non-idealities through the macro-steps that make up any CMB experiment (observation of multi-frequency maps, foreground cleaning, and power spectra estimation) and compute the HWP-induced bias on the estimated tensor-to-scalar ratio, . We find that the effective polarization efficiency of the HWP suppresses the polarization signal, leading to an underestimation of . Laboratory measurements of the properties of the HWP can be used to calibrate this effect, but we show how gain calibration of the CMB temperature can also be used to partially mitigate it. On the basis of our findings, we present a set of recommendations for the HWP design that can help maximize the benefits of gain calibration.
17 pages + appendices and bibliography, 7 figures, 1 table
References in corpus (25)
- BICEP / Keck XIII: Improved Constraints on Primordial Gravitational Waves using Planck, WMAP, and BICEP/Keck Observations through the 2018 Observing Season
- CMB-S4 Science Case, Reference Design, and Project Plan
- A full sky, low foreground, high resolution CMB map from WMAP
- Measurements of the E-Mode Polarization and Temperature-E-Mode Correlation of the CMB from SPT-3G 2018 Data
- Improved limits on the tensor-to-scalar ratio using BICEP and Planck
- New physics from the polarised light of the cosmic microwave background
- Planck constraints on the tensor-to-scalar ratio
- The Origin of Parity Violation in Polarized Dust Emission and Implications for Cosmic Birefringence
- New constraint on the tensor-to-scalar ratio from the and BICEP/Keck Array data using the profile likelihood
- Generation of Circular Polarization of the Cosmic Microwave Background
- Design and development of an ambient-temperature continuously-rotating achromatic half-wave plate for CMB polarization modulation on the POLARBEAR-2 experiment
- Development of large radii half-wave plates for CMB satellite missions
- Pre-flight integration and characterization of the SPIDER balloon-borne telescope
- Multi-Clustering Needlet-ILC for CMB B-modes component separation
- Framework for analysis of next generation, polarised CMB data sets in the presence of galactic foregrounds and systematic effects
- In-flight polarization angle calibration for LiteBIRD: blind challenge and cosmological implications
- BeyondPlanck VII. Bayesian estimation of gain and absolute calibration for CMB experiments
- Probing frequency-dependent half-wave plate systematics for CMB experiments with full-sky beam convolution simulations
- Instrumental performance and results from testing of the BLAST-TNG receiver, submillimeter optics, and MKID arrays
- The conventions for the polarization angle
- Impact of half-wave plate systematics on the measurement of cosmic birefringence from CMB polarization
- Physics Beyond The Standard Model with Circular Polarization in the CMB and CMB-21cm Cross-Correlation
- Mitigation of the spectral dependent polarization angle response for achromatic half-wave plate
- PILOT: a balloon-borne experiment to measure the polarized FIR emission of dust grains in the interstellar medium
- Design of a frequency-independent optic axis Pancharatnam-based achromatic half-wave plate
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