English

Fundamental Neutron Physics: a White Paper on Progress and Prospects in the US

Nuclear Experiment 2023-08-21 v1 High Energy Physics - Experiment

Abstract

Fundamental neutron physics, combining precision measurements and theory, probes particle physics at short range with reach well beyond the highest energies probed by the LHC. Significant US efforts are underway that will probe BSM CP violation with orders of magnitude more sensitivity, provide new data on the Cabibbo anomaly, more precisely measure the neutron lifetime and decay, and explore hadronic parity violation. World-leading results from the US Fundamental Neutron Physics community since the last Long Range Plan, include the world's most precise measurement of the neutron lifetime from UCNτ\tau, the final results on the beta-asymmetry from UCNA and new results on hadronic parity violation from the NPDGamma and n-3{^3}He runs at the FNPB (Fundamental Neutron Physics Beamline), precision measurement of the radiative neutron decay mode and n-4{}^4He at NIST. US leadership and discovery potential are ensured by the development of new high-impact experiments including BL3, Nab, LANL nEDM and nEDM@SNS. On the theory side, the last few years have seen results for the neutron EDM from the QCD θ\theta term, a factor of two reduction in the uncertainty for inner radiative corrections in beta-decay which impacts CKM unitarity, and progress on {\it ab initio} calculations of nuclear structure for medium-mass and heavy nuclei which can eventually improve the connection between nuclear and nucleon EDMs. In order to maintain this exciting program and capitalize on past investments while also pursuing new ideas and building US leadership in new areas, the Fundamental Neutron Physics community has identified a number of priorities and opportunities for our sub-field covering the time-frame of the last Long Range Plan (LRP) under development. This white paper elaborates on these priorities.

Keywords

Cite

@article{arxiv.2308.09059,
  title  = {Fundamental Neutron Physics: a White Paper on Progress and Prospects in the US},
  author = {R. Alarcon and A. Aleksandrova and S. Baeßler and D. H. Beck and T. Bhattacharya and M. Blatnik and T. J. Bowles and J. D. Bowman and J. Brewington and L. J. Broussard and A. Bryant and J. F. Burdine and J. Caylor and Y. Chen and J. H. Choi and L. Christie and T. E. Chupp and V. Cianciolo and V. Cirigliano and S. M. Clayton and B. Collett and C. Crawford and W. Dekens and M. Demarteau and D. DeMille and G. Dodson and B. W. Filippone and N. Floyd and N. Fomin and J Fry and K. Fuyuto and S. Gardner and R. Godri and R. Golub and F. Gonzalez and G. L. Greene and V. Gudkov and R. Gupta and J. Hamblen and L. Hayen and J C. Hendrus and K. Hickerson and F. B. Hills and A. T. Holley and S. Hoogerheide and M. Hubert and P. R. Huffman and S. K. Imam and T. M. Ito and L. Jin and G. Jones and A. Komives and E. Korobkina and W. Korsch and K. K. H. Leung and C. -Y. Liu and K. -F. Liu and J. C. Long and D. Mathews and A. Mendelsohn and E. Mereghetti and P. Mohanmurthy and C. L. Morris and P. Mueller and H. P. Mumm and A. Nelsen and A. Nicholson and J. Nico and C. M. O'Shaughnessy and P. A. Palamure and S. Pastore and R. W. Pattie and N. S. Phan and J. A. Pioquinto and B. Plaster and D. Počanić and H. Rahangdale and R. Redwine and A. Reid and D. J. Salvat and A. Saunders and D. Schaper and C. -Y. Seng and M. Singh and A. Shindler and W. M. Snow and Z. Tang and A. Walker-Loud and D. K. -T. Wong and F. Wietfeldt and A. R. Young},
  journal= {arXiv preprint arXiv:2308.09059},
  year   = {2023}
}

Comments

arXiv admin note: text overlap with arXiv:2304.03451