European Strategy for Particle Physics Update -- PIONEER: a next generation rare pion decay experiment
Abstract
PIONEER is a rapidly developing effort aimed to perform a pristine test of lepton flavour universality (LFU) and of the unitarity of the first row of the CKM matrix by significantly improving the measurements of rare decays of the charged pion. In Phase I, PIONEER aims to measure the charged-pion branching ratio to electrons vs.\ muons to 1 part in , improving the current experimental result by a factor of 15. This precision on will match the theoretical accuracy of the SM prediction allowing for a test of LFU at an unprecedented level, probing non-SM explanations of LFU violation through sensitivity to quantum effects of new particles up to the PeV mass scale. Phase II and III will aim to improve the experimental precision of the branching ratio of pion beta decay, , currently at , by a factor of three and six, respectively. The improved measurements will be used to extract in a theoretically pristine manner. The ultimate precision of is expected to reach the 0.05\,\% level, allowing for a stringent test of CKM unitarity. The PIONEER experiment will also improve the experimental limits by an order of magnitude or more on a host of exotic decays that probe the effects of heavy neutrinos and dark sector physics. This input to the 2026 update of the European Strategy for Particle Physics Strategy describes the physics motivation and the conceptual design of the PIONEER experiment, and is prepared based on the PIONEER proposal submitted to and approved with high priority by the PSI program advisory committee (PAC). Using intense pion beams, and state-of-the-art instrumentation and computational resources, the PIONEER experiment is aiming to begin data taking by the end of this decade.
Cite
@article{arxiv.2504.06375,
title = {European Strategy for Particle Physics Update -- PIONEER: a next generation rare pion decay experiment},
author = {PIONEER Collaboration and A. Adelmann and W. Altmannshofer and S. Ban and O. Beesley and A. Bolotnikov and T. Brunner and D. Bryman and Q. Buat and L. Caminada and J. Carlton and S. Chen and M. Chiu and V. Cirigliano and S. Corrodi and A. Crivellin and S. Cuen-Rochin and J. Datta and B. Davis-Purcell and A. Deshpande and A. Di Canto and A. Ebrahimi and P. Fisher and S. Foster and K. Frahm and L. Gerritzen and G. Giacomini and L. Gibbons and C. Glaser and T. Gorringe and C. Hamilton and S. Heinekamp and D. Hertzog and S. Hochrein and M. Hoferichter and S. Ito and T. Iwamoto and P. Kammel and E. Klemets and L. Kurchaninov and K. Labe and U. Langenegger and Y. Li and C. Malbrunot and A. Matsushita and S. M. Mazza and S. Mehrotra and S. Mihara and R. Mischke and A. Molnar and T. Mori and T. Numao and W. Ootani and J. Ott and K. Pachal and D. Pocanic and X. Qian and D. Ries and R. Roehnelt and T. Rohe and T. Rostomyan and B. Schumm and P. Schwendimann and A. Seiden and A. Sher and R. Shrock and A. Soter and T. Sullivan and E. Swanson and V. Tishchenko and A. Tricoli and T. Tsang and Y. Uchiyama and B. Velghe and M. Worcester and E. Worcester and J. Yang and Y. Zhang and C. Zhang},
journal= {arXiv preprint arXiv:2504.06375},
year = {2025}
}
Comments
Input to the 2024-2026 Update of the of the European Strategy for Particle Physics