LiteBIRD Mission Overview after Mission Reformation
Abstract
LiteBIRD is a JAXA-led space mission designed to produce all-sky microwave polarization maps. Its primary science goal is to test representative inflationary models by measuring the cosmic microwave background -mode polarization generated by primordial gravitational waves, while also providing new insights into cosmology, particle physics, and astrophysics. The mission concept has been updated following the reformation activities initiated after the Mission Definition Review in 2024. The current concept preserves the central scientific objectives, while simplifying the payload configuration: a single telescope covers 12 frequency bands with band centers spanning 40 to 402~GHz, corresponding to an optical coverage of 34--448~GHz. The telescope is a cross-Dragone reflector with a 500~mm aperture diameter, cooled to approximately 5~K and coupled to transition-edge-sensor bolometer arrays operated at 0.1~K. LiteBIRD will observe from a Lissajous orbit around the Sun--Earth L2 point during a nominal 3-year survey. More specifically, the primary scientific objective is to achieve total uncertainty in the tensor-to-scalar ratio of (68\% C.L.), including contributions from foreground residuals, statistical uncertainties, instrumental systematics, and margin contingency. The corresponding map-noise requirements are specified separately for the low-, mid-, and high-frequency ranges over the reionization and recombination multipole ranges. This sensitivity makes LiteBIRD unique not only for inflationary science but also for a broad range of scientific investigations probing the history of both the early and late Universe, as well as for astrophysical processes, including Galactic science. This paper summarizes the scientific objectives, updated payload and instrument concepts, observation strategy, and ground segment plans.
Cite
@article{arxiv.2607.25285,
title = {LiteBIRD Mission Overview after Mission Reformation},
author = {LiteBIRD Collaboration and K. Aizawa and H. Akamatsu and R. Akizawa and E. Allys and A. Anand and D. Audley and J. Aumont and S. Azzoni and C. Baccigalupi and M. Ballardini and A. J. Banday and G. Barbieri Ripamonti and R. B. Barreiro and N. Bartolo and S. Basak and M. Bersanelli and A. Besnard and D. Blinov and F. Bouchet and F. Boulanger and N. Brancadori and T. Brinckmann and E. Calabrese and P. Campeti and A. Carones and F. Carralot and F. J. Casas and J. Chandran and Y. Chinone and M. Citran and F. Columbro and A. Coppolecchia and F. Cuttaia and P. Dal Bo and P. de Bernardis and T. de Haan and E. de la Hoz and M. De Lucia and M. De Petris and S. Della Torre and C. Dickinson and P. Diego-Palazuelos and J. J. Díaz García and T. Dotani and M. Douspis and K. Ebisawa and H. K. Eriksen and J. Errard and E. Ferreira and F. Finelli and C. Franceschet and R. Fujimoto 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 E. Gjerløw and M. Gomes and A. Gruppuso and J. E. Gudmundsson and P. Hargrave and S. E. Harper and M. Hasegawa and M. Hazumi and S. Henrot-Versillé and L. T. Hergt and E. Hivon and K. Ichiki and K. Ikuma and T. L. Irikura and H. Ishino and B. Jost and R. Keskitalo and K. Kikuno and K. Kohri and E. Komatsu and L. Lamagna and M. Lattanzi and C. Leloup and M. Lembo and F. Levrier and J. Liu and A. I. Lonappan and M. López-Caniego and G. Luzzi and J. Macias-Perez and A. Maeda and B. Maffei and D. Maino and V. Maranchery and E. Martínez-González and S. Masi and S. Matarrese and F. T. Matsuda and T. Matsumura and S. Micheli and M. Migliaccio and M. Monelli and L. Montier and L. Mousset and S. Myozen and Y. Nagano and R. Nagata and K. Nagayoshi and M. Najafi and T. Namikawa and P. Natoli and F. Noviello and A. Occhiuzzi and K. Odagiri and S. Oguri and H. Ohsaki and S. Okumura and L. Pagano and A. Paiella and D. Paoletti and S. Paradiso and G. Pascual-Cisneros and G. Patanchon and V. Pavlidou and F. Piacentini and M. Piat and G. Piccirilli and M. Pinchera and G. Pisano and G. Polenta and L. Porcelli and F. S. Porter and M. Reinecke and M. Remazeilles and A. Rizzieri and J. A. Rubiño-Martín and M. Ruiz-Granda and Y. Sakurai and L. Salvati and J. Sanghavi and G. Savini and D. Scott and Y. Sekimoto and M. Shiraishi and G. Signorelli and S. Stellati and R. Stompor and R. M. Sullivan and R. Takahashi and R. Takaku and H. Takakura and Y. Takase and A. Tartari and K. Tassis and K. Tateoka and L. Terenzi and M. Tomasi and M. Tristram and M. Tsujimoto and D. Vaccaro and L. Vacher and B. van Tent and P. Vielva and S. Vinzl and K. Watanuki and D. J. Watts and I. K. Wehus and G. Weymann-Despres and B. Winter and E. J. Wollack and N. Y. Yamasaki and K. Yoshihara and A. Zacchei and M. Zannoni},
journal= {arXiv preprint arXiv:2607.25285},
year = {2026}
}
Comments
11 pages, 3 figures, 2 tables. SPIE Astronomical Telescopes + Instrumentation 2026