Constraining stochastic gravitational wave background from weak lensing of CMB B-modes
arXiv:1606.08862 · doi:10.1088/1475-7516/2016/09/029
Abstract
A stochastic gravitational wave background (SGWB) will affect the CMB anisotropies via weak lensing. Unlike weak lensing due to large scale structure which only deflects photon trajectories, a SGWB has an additional effect of rotating the polarization vector along the trajectory. We study the relative importance of these two effects, deflection \& rotation, specifically in the context of E-mode to B-mode power transfer caused by weak lensing due to SGWB. Using weak lensing distortion of the CMB as a probe, we derive constraints on the spectral energy density () of the SGWB, sourced at different redshifts, without assuming any particular model for its origin. We present these bounds on for different power-law models characterizing the SGWB, indicating the threshold above which observable imprints of SGWB must be present in CMB.
12 pages, 3 figures, Matches the published version
References in corpus (12)
- Observation of Gravitational Waves from a Binary Black Hole Merger
- GW150914: Implications for the stochastic gravitational wave background from binary black holes
- Primordial power spectrum from Planck
- Reconstruction of the Primordial Power Spectrum using Temperature and Polarisation Data from Multiple Experiments
- N-body methods for relativistic cosmology
- Weak Lensing of the Cosmic Microwave Background by Foreground Gravitational Waves
- Cosmic Shear from Scalar-Induced Gravitational Waves
- Full-sky formulae for weak lensing power spectra from total angular momentum method
- Rotation of the cosmic microwave background polarization from weak gravitational lensing
- Stochastic gravitational wave background from cold dark matter halos
- Future detectability of gravitational-wave induced lensing from high-sensitivity CMB experiments
- A comparison of CMB lensing efficiency of gravitational waves and large scale structure