English

LiteBIRD Science Goals and Forecasts: constraining isotropic cosmic birefringence

Cosmology and Nongalactic Astrophysics 2025-06-24 v2

Abstract

Cosmic birefringence (CB) is the rotation of the photons' linear polarisation plane during propagation. Such an effect is a tracer of parity-violating extensions of standard electromagnetism and would probe the existence of a new cosmological field acting as dark matter or dark energy. It has become customary to employ cosmic microwave background (CMB) polarised data to probe such a phenomenon. Recent analyses on Planck and WMAP data provide a hint of detection of the isotropic CB angle with an amplitude of around 0.30.3^\circ at the level of 2.42.4 to 3.6σ3.6\sigma. In this work, we explore the LiteBIRD capabilities in constraining such an effect, accounting for the impact of the more relevant systematic effects, namely foreground emission and instrumental polarisation angles. We build five semi-independent pipelines and test these against four different simulation sets with increasing complexity in terms of non-idealities. All the pipelines are shown to be robust and capable of returning the expected values of the CB angle within statistical fluctuations for all the cases considered. We find that the uncertainties in the CB estimates increase with more complex simulations. However, the trend is less pronounced for pipelines that account for the instrumental polarisation angles. For the most complex case analysed, we find that LiteBIRD will be able to detect a CB angle of 0.30.3^\circ with a statistical significance ranging from 55 to 13σ13 \, \sigma, depending on the pipeline employed, where the latter uncertainty corresponds to a total error budget of the order of 0.020.02^\circ.

Keywords

Cite

@article{arxiv.2503.22322,
  title  = {LiteBIRD Science Goals and Forecasts: constraining isotropic cosmic birefringence},
  author = {E. de la Hoz and P. Diego-Palazuelos and J. Errard and A. Gruppuso and B. Jost and R. M. Sullivan and M. Bortolami and Y. Chinone and L. T. Hergt and E. Komatsu and Y. Minami and I. Obata and D. Paoletti and D. Scott and P. Vielva and D. Adak and R. Akizawa and A. Anand and J. Aumont and C. Baccigalupi and A. J. Banday and R. B. Barreiro and N. Bartolo and S. Basak and A. Basyrov and M. Bersanelli and T. Brinckmann and F. Cacciotti and E. Calabrese and P. Campeti and E. Carinos and A. Carones and F. Carralot and F. J. Casas and M. Citran and L. Clermont and F. Columbro and G. Coppi and A. Coppolecchia and F. Cuttaia and P. de Bernardis and M. De Lucia and M. De Petris and S. Della Torre and E. Di Giorgi and H. K. Eriksen and E. Ferreira and F. Finelli and C. Franceschet and U. Fuskeland and G. Galloni and M. Galloway and M. Gerbino and M. Gervasi and R. T. Génova-Santos and T. Ghigna and S. Giardiello and C. Gimeno-Amo and E. Gjerløw and M. Hazumi and S. Henrot-Versillé and E. Hivon and H. Ishino and K. Kohri and L. Lamagna and M. Lattanzi and C. Leloup 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 R. Nagata and T. Namikawa and P. Natoli and A. Occhiuzzi and L. Pagano and A. Paiella and G. Pascual-Cisneros and V. Pavlidou and V. Pelgrims and F. Piacentini and G. Piccirilli and G. Polenta and L. Porcelli and N. Raffuzzi and M. Remazeilles and A. Ritacco and A. Rizzieri and J. A. Rubiño-Martín and M. Ruiz-Granda and Y. Sakurai and J. Sanghavi and M. Shiraishi and S. L. Stever and Y. Takase and K. Tassis and L. Terenzi and M. Tomasi and M. Tristram and L. Vacher and B. van Tent and D. Watts and I. K. Wehus and G. Weymann-Despres and B. Winter and E. J. Wollack and Y. Zhou},
  journal= {arXiv preprint arXiv:2503.22322},
  year   = {2025}
}

Comments

56 pages, 22 figures. Accepted for publication in JCAP

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