Search for Light Neutral Bosons in the TREK/E36 Experiment at J-PARC
arXiv:2212.10813 · doi:10.1088/1742-6596/2391/1/012012
Abstract
The Standard Model (SM) represents our best description of the subatomic world and it has been very successful in explaining how elementary particles interact under the influence of the fundamental forces. Despite its far reaching success in describing the building blocks of matter, the SM is still incomplete; falling short to explain dark matter, baryogenesis, neutrino masses and much more. The E36 experiment conducted at J-PARC in Japan, allows for sensitivity to search for light gauge bosons, in the muonic decay channel. Such bosons could be associated with dark matter or explain established muon-related anomalies such as the muon value, and the proton radius puzzle. A scintillating fiber target was used to stop a beam of positively charged mesons. The products were detected with a large-acceptance toroidal spectrometer capable of tracking charged particles with high resolution, combined with a large solid angle CsI(TI) photon detector and particle ID systems. A realistic simulation was employed to search for these rare decays in the mass range of 20100 MeV/. Preliminary results of the upper limits for the branching ratio extracted at 95\% CL, will be discussed.
References in corpus (6)
- New Fixed-Target Experiments to Search for Dark Gauge Forces
- The Standard Model prediction for R_{e/mu}^{(pi,K)}
- Muonic hydrogen and MeV forces
- New Parity-Violating Muonic Forces
- pi/K -> e nu branching ratios to O(e^2 p^4) in Chiral Perturbation Theory
- The design and basic performance of a Spiral Fiber Tracker for the J-PARC E36 experiment