English

LiteBIRD Science Goals and Forecasts: Primordial Magnetic Fields

Cosmology and Nongalactic Astrophysics 2025-03-05 v1

Abstract

We 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 B1MpcnB=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, B1Mpcmarg<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, B2marg<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, B1MpcnB=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.

Keywords

Cite

@article{arxiv.2403.16763,
  title  = {LiteBIRD Science Goals and Forecasts: Primordial Magnetic Fields},
  author = {D. Paoletti and J. Rubino-Martin and M. Shiraishi and D. Molinari and J. Chluba and F. Finelli and C. Baccigalupi and J. Errard and A. Gruppuso and A. I. Lonappan and A. Tartari and E. Allys and A. Anand and J. Aumont and M. Ballardini and A. J. Banday and R. B. Barreiro and N. Bartolo and M. Bersanelli and M. Bortolami and T. Brinckmann and E. Calabrese and P. Campeti and A. Carones and F. J. Casas and K. Cheung and L. Clermont and F. Columbro and G. Conenna and A. Coppolecchia and F. Cuttaia and G. D'Alessandro and P. de Bernardis and S. Della Torre and P. Diego-Palazuelos and H. K. Eriksen and U. Fuskeland and G. Galloni and M. Galloway and M. Gerbino and M. Gervasi and T. Ghigna and S. Giardiello and C. Gimeno-Amo and E. Gjerløw and F. Grupp and M. Hazumi and S. Henrot-Versillé and L. T. Hergt and E. Hivon and K. Ichiki and H. Ishino and K. Kohri and E. Komatsu and N. Krachmalnicoff and L. Lamagna and M. Lattanzi and M. Lembo and F. Levrier and M. López-Caniego and G. Luzzi and E. Martínez-González and S. Masi and S. Matarrese and S. Micheli and M. Migliaccio and M. Monelli and L. Montier and G. Morgante and L. Mousset and R. Nagata and T. Namikawa and P. Natoli and A. Novelli and I. Obata and A. Occhiuzzi and K. Odagiri and L. Pagano and A. Paiella and G. Pascual-Cisneros and F. Piacentini and G. Piccirilli and M. Remazeilles and A. Ritacco and M. Ruiz-Granda and Y. Sakurai and D. Scott and S. L. Stever and R. M. Sullivan and Y. Takase and K. Tassis and L. Terenzi and M. Tristram and L. Vacher and B. van Tent and P. Vielva and I. K. Wehus and G. Weymann-Despres and M. Zannoni and Y. Zhou},
  journal= {arXiv preprint arXiv:2403.16763},
  year   = {2025}
}

Comments

51 pages, 24 figures, abstract shortened

R2 v1 2026-06-28T15:32:42.759Z