31 research outputs found

    The Simons Observatory: impact of bandpass, polarization angle and calibration uncertainties on small-scale power spectrum analysis

    No full text
    International audienceWe study the effects due to mismatches in passbands, polarization angles, and temperature and polarization calibrations in the context of the upcoming cosmic microwave background experiment Simons Observatory (SO). Using the SO multi-frequency likelihood, we estimate the bias and the degradation of constraining power in cosmological and astrophysical foreground parameters assuming different levels of knowledge of the instrumental effects. We find that incorrect but reasonable assumptions on the values of all the systematics examined here can have important effects in cosmological analyses, hence requiring marginalization approaches at likelihood level. When doing so, we find that the most relevant effect is due to bandpass shifts. When marginalizing over them, the posteriors of parameters describing astrophysical microwave foregrounds (such as radio point sources or dust) get degraded, while cosmological parameters constraints are not significantly affected. Marginalization over polarization angles with up to 0.25∘^\circ uncertainty causes an irrelevant bias â‰Č0.05σ\lesssim 0.05 \sigma in all parameters. Marginalization over calibration factors in polarization broadens the constraints on the effective number of relativistic degrees of freedom NeffN_\mathrm{eff} by a factor 1.2, interpreted here as a proxy parameter for non standard model physics targeted by high-resolution CMB measurements

    The Simons Observatory: impact of bandpass, polarization angle and calibration uncertainties on small-scale power spectrum analysis

    No full text
    International audienceWe study the effects due to mismatches in passbands, polarization angles, and temperature and polarization calibrations in the context of the upcoming cosmic microwave background experiment Simons Observatory (SO). Using the SO multi-frequency likelihood, we estimate the bias and the degradation of constraining power in cosmological and astrophysical foreground parameters assuming different levels of knowledge of the instrumental effects. We find that incorrect but reasonable assumptions on the values of all the systematics examined here can have important effects in cosmological analyses, hence requiring marginalization approaches at likelihood level. When doing so, we find that the most relevant effect is due to bandpass shifts. When marginalizing over them, the posteriors of parameters describing astrophysical microwave foregrounds (such as radio point sources or dust) get degraded, while cosmological parameters constraints are not significantly affected. Marginalization over polarization angles with up to 0.25∘^\circ uncertainty causes an irrelevant bias â‰Č0.05σ\lesssim 0.05 \sigma in all parameters. Marginalization over calibration factors in polarization broadens the constraints on the effective number of relativistic degrees of freedom NeffN_\mathrm{eff} by a factor 1.2, interpreted here as a proxy parameter for non standard model physics targeted by high-resolution CMB measurements

    The Simons Observatory: impact of bandpass, polarization angle and calibration uncertainties on small-scale power spectrum analysis

    No full text
    International audienceWe study the effects due to mismatches in passbands, polarization angles, and temperature and polarization calibrations in the context of the upcoming cosmic microwave background experiment Simons Observatory (SO). Using the SO multi-frequency likelihood, we estimate the bias and the degradation of constraining power in cosmological and astrophysical foreground parameters assuming different levels of knowledge of the instrumental effects. We find that incorrect but reasonable assumptions on the values of all the systematics examined here can have important effects in cosmological analyses, hence requiring marginalization approaches at likelihood level. When doing so, we find that the most relevant effect is due to bandpass shifts. When marginalizing over them, the posteriors of parameters describing astrophysical microwave foregrounds (such as radio point sources or dust) get degraded, while cosmological parameters constraints are not significantly affected. Marginalization over polarization angles with up to 0.25∘^\circ uncertainty causes an irrelevant bias â‰Č0.05σ\lesssim 0.05 \sigma in all parameters. Marginalization over calibration factors in polarization broadens the constraints on the effective number of relativistic degrees of freedom NeffN_\mathrm{eff} by a factor 1.2, interpreted here as a proxy parameter for non standard model physics targeted by high-resolution CMB measurements

    LiteBIRD Science Goals and Forecasts: Primordial Magnetic Fields

    No full text
    International audienceWe present detailed forecasts for the constraints on primordial magnetic fields (PMFs) that will be obtained with the LiteBIRD satellite. The constraints are driven by the effects of PMFs on the CMB anisotropies: the gravitational effects of magnetically-induced perturbations; the effects on the thermal and ionization history of the Universe; the Faraday rotation imprint on the CMB polarization; and the non-Gaussianities induced in polarization anisotropies. LiteBIRD represents a sensitive probe for PMFs and by exploiting all the physical effects, it will be able to improve the current limit coming from Planck. In particular, thanks to its accurate BB-mode polarization measurement, LiteBIRD will improve the constraints on infrared configurations for the gravitational effect, giving B1 MpcnB=−2.9<0.8B_{\rm 1\,Mpc}^{n_{\rm B} =-2.9} < 0.8 nG at 95% C.L., potentially opening the possibility to detect nanogauss fields with high significance. We also observe a significant improvement in the limits when marginalized over the spectral index, B1 Mpcmarg<2.2B_{1\,{\rm Mpc}}^{\rm marg}< 2.2 nG at 95% C.L. From the thermal history effect, which relies mainly on EE-mode polarization data, we obtain a significant improvement for all PMF configurations, with the marginalized case, ⟹B2⟩marg<0.50\sqrt{\langle B^2\rangle}^{\rm marg}<0.50 nG at 95% C.L. Faraday rotation constraints will take advantage of the wide frequency coverage of LiteBIRD and the high sensitivity in BB modes, improving the limits by orders of magnitude with respect to current results, B1 MpcnB=−2.9<3.2B_{1\,{\rm Mpc}}^{n_{\rm B} =-2.9} < 3.2 nG at 95% C.L. Finally, non-Gaussianities of the BB-mode polarization can probe PMFs at the level of 1 nG, again significantly improving the current bounds from Planck. Altogether our forecasts represent a broad collection of complementary probes, providing conservative limits on PMF characteristics that will be achieved with LiteBIRD

    LiteBIRD Science Goals and Forecasts: Primordial Magnetic Fields

    No full text
    International audienceWe present detailed forecasts for the constraints on primordial magnetic fields (PMFs) that will be obtained with the LiteBIRD satellite. The constraints are driven by the effects of PMFs on the CMB anisotropies: the gravitational effects of magnetically-induced perturbations; the effects on the thermal and ionization history of the Universe; the Faraday rotation imprint on the CMB polarization; and the non-Gaussianities induced in polarization anisotropies. LiteBIRD represents a sensitive probe for PMFs and by exploiting all the physical effects, it will be able to improve the current limit coming from Planck. In particular, thanks to its accurate BB-mode polarization measurement, LiteBIRD will improve the constraints on infrared configurations for the gravitational effect, giving B1 MpcnB=−2.9<0.8B_{\rm 1\,Mpc}^{n_{\rm B} =-2.9} < 0.8 nG at 95% C.L., potentially opening the possibility to detect nanogauss fields with high significance. We also observe a significant improvement in the limits when marginalized over the spectral index, B1 Mpcmarg<2.2B_{1\,{\rm Mpc}}^{\rm marg}< 2.2 nG at 95% C.L. From the thermal history effect, which relies mainly on EE-mode polarization data, we obtain a significant improvement for all PMF configurations, with the marginalized case, ⟹B2⟩marg<0.50\sqrt{\langle B^2\rangle}^{\rm marg}<0.50 nG at 95% C.L. Faraday rotation constraints will take advantage of the wide frequency coverage of LiteBIRD and the high sensitivity in BB modes, improving the limits by orders of magnitude with respect to current results, B1 MpcnB=−2.9<3.2B_{1\,{\rm Mpc}}^{n_{\rm B} =-2.9} < 3.2 nG at 95% C.L. Finally, non-Gaussianities of the BB-mode polarization can probe PMFs at the level of 1 nG, again significantly improving the current bounds from Planck. Altogether our forecasts represent a broad collection of complementary probes, providing conservative limits on PMF characteristics that will be achieved with LiteBIRD

    LiteBIRD Science Goals and Forecasts: Primordial Magnetic Fields

    No full text
    International audienceWe present detailed forecasts for the constraints on primordial magnetic fields (PMFs) that will be obtained with the LiteBIRD satellite. The constraints are driven by the effects of PMFs on the CMB anisotropies: the gravitational effects of magnetically-induced perturbations; the effects on the thermal and ionization history of the Universe; the Faraday rotation imprint on the CMB polarization; and the non-Gaussianities induced in polarization anisotropies. LiteBIRD represents a sensitive probe for PMFs and by exploiting all the physical effects, it will be able to improve the current limit coming from Planck. In particular, thanks to its accurate BB-mode polarization measurement, LiteBIRD will improve the constraints on infrared configurations for the gravitational effect, giving B1 MpcnB=−2.9<0.8B_{\rm 1\,Mpc}^{n_{\rm B} =-2.9} < 0.8 nG at 95% C.L., potentially opening the possibility to detect nanogauss fields with high significance. We also observe a significant improvement in the limits when marginalized over the spectral index, B1 Mpcmarg<2.2B_{1\,{\rm Mpc}}^{\rm marg}< 2.2 nG at 95% C.L. From the thermal history effect, which relies mainly on EE-mode polarization data, we obtain a significant improvement for all PMF configurations, with the marginalized case, ⟹B2⟩marg<0.50\sqrt{\langle B^2\rangle}^{\rm marg}<0.50 nG at 95% C.L. Faraday rotation constraints will take advantage of the wide frequency coverage of LiteBIRD and the high sensitivity in BB modes, improving the limits by orders of magnitude with respect to current results, B1 MpcnB=−2.9<3.2B_{1\,{\rm Mpc}}^{n_{\rm B} =-2.9} < 3.2 nG at 95% C.L. Finally, non-Gaussianities of the BB-mode polarization can probe PMFs at the level of 1 nG, again significantly improving the current bounds from Planck. Altogether our forecasts represent a broad collection of complementary probes, providing conservative limits on PMF characteristics that will be achieved with LiteBIRD

    LiteBIRD Science Goals and Forecasts. A Case Study of the Origin of Primordial Gravitational Waves using Large-Scale CMB Polarization

    No full text
    International audienceWe study the possibility of using the LiteBIRDLiteBIRD satellite BB-mode survey to constrain models of inflation producing specific features in CMB angular power spectra. We explore a particular model example, i.e. spectator axion-SU(2) gauge field inflation. This model can source parity-violating gravitational waves from the amplification of gauge field fluctuations driven by a pseudoscalar "axionlike" field, rolling for a few e-folds during inflation. The sourced gravitational waves can exceed the vacuum contribution at reionization bump scales by about an order of magnitude and can be comparable to the vacuum contribution at recombination bump scales. We argue that a satellite mission with full sky coverage and access to the reionization bump scales is necessary to understand the origin of the primordial gravitational wave signal and distinguish among two production mechanisms: quantum vacuum fluctuations of spacetime and matter sources during inflation. We present the expected constraints on model parameters from LiteBIRDLiteBIRD satellite simulations, which complement and expand previous studies in the literature. We find that LiteBIRDLiteBIRD will be able to exclude with high significance standard single-field slow-roll models, such as the Starobinsky model, if the true model is the axion-SU(2) model with a feature at CMB scales. We further investigate the possibility of using the parity-violating signature of the model, such as the TBTB and EBEB angular power spectra, to disentangle it from the standard single-field slow-roll scenario. We find that most of the discriminating power of LiteBIRDLiteBIRD will reside in BBBB angular power spectra rather than in TBTB and EBEB correlations

    Impact of beam far side-lobe knowledge in the presence of foregrounds for LiteBIRD

    No full text
    International audienceWe present a study of the impact of an uncertainty in the beam far side-lobe knowledge on the measurement of the Cosmic Microwave Background BB-mode signal at large scale. It is expected to be one of the main source of systematic effects in future CMB observations. Because it is crucial for all-sky survey missions to take into account the interplays between beam systematic effects and all the data analysis steps, the primary goal of this paper is to provide the methodology to carry out the end-to-end study of their effect for a space-borne CMB polarization experiment, up to the cosmological results in the form of a bias ÎŽr\delta r on the tensor-to-scalar ratio rr. LiteBIRD is dedicated to target the measurement of CMB primordial BB modes by reaching a sensitivity of σ(r)≀10−3\sigma \left( r \right) \leq 10^{-3} assuming r=0r=0. As a demonstration of our framework, we derive the relationship between the knowledge of the beam far side-lobes and the tentatively allocated error budget under given assumptions on design, simulation and component separation method. We assume no mitigation of the far side-lobes effect at any stage of the analysis pipeline. We show that ÎŽr\delta r is mostly due to the integrated fractional power difference between the estimated beams and the true beams in the far side-lobes region, with little dependence on the actual shape of the beams, for low enough ÎŽr\delta r. Under our set of assumptions, in particular considering the specific foreground cleaning method we used, we find that the integrated fractional power in the far side-lobes should be known at a level as tight as ∌10−4\sim 10^{-4}, to achieve the required limit on the bias ÎŽr<1.9×10−5\delta r < 1.9 \times 10^{-5}. The framework and tools developed for this study can be easily adapted to provide requirements under different design, data analysis frameworks and for other future space-borne experiments beyond LiteBIRD
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