English

Long-Lived Particles at the Energy Frontier: The MATHUSLA Physics Case

High Energy Physics - Phenomenology 2020-01-08 v2 High Energy Physics - Experiment

Abstract

We examine the theoretical motivations for long-lived particle (LLP) signals at the LHC in a comprehensive survey of Standard Model (SM) extensions. LLPs are a common prediction of a wide range of theories that address unsolved fundamental mysteries such as naturalness, dark matter, baryogenesis and neutrino masses, and represent a natural and generic possibility for physics beyond the SM (BSM). In most cases the LLP lifetime can be treated as a free parameter from the μ\mum scale up to the Big Bang Nucleosynthesis limit of 107\sim 10^7m. Neutral LLPs with lifetimes above \sim 100m are particularly difficult to probe, as the sensitivity of the LHC main detectors is limited by challenging backgrounds, triggers, and small acceptances. MATHUSLA is a proposal for a minimally instrumented, large-volume surface detector near ATLAS or CMS. It would search for neutral LLPs produced in HL-LHC collisions by reconstructing displaced vertices (DVs) in a low-background environment, extending the sensitivity of the main detectors by orders of magnitude in the long-lifetime regime. In this white paper we study the LLP physics opportunities afforded by a MATHUSLA-like detector at the HL-LHC. We develop a model-independent approach to describe the sensitivity of MATHUSLA to BSM LLP signals, and compare it to DV and missing energy searches at ATLAS or CMS. We then explore the BSM motivations for LLPs in considerable detail, presenting a large number of new sensitivity studies. While our discussion is especially oriented towards the long-lifetime regime at MATHUSLA, this survey underlines the importance of a varied LLP search program at the LHC in general. By synthesizing these results into a general discussion of the top-down and bottom-up motivations for LLP searches, it is our aim to demonstrate the exceptional strength and breadth of the physics case for the construction of the MATHUSLA detector.

Keywords

Cite

@article{arxiv.1806.07396,
  title  = {Long-Lived Particles at the Energy Frontier: The MATHUSLA Physics Case},
  author = {David Curtin and Marco Drewes and Matthew McCullough and Patrick Meade and Rabindra N. Mohapatra and Jessie Shelton and Brian Shuve and Elena Accomando and Cristiano Alpigiani and Stefan Antusch and Juan Carlos Arteaga-Velázquez and Brian Batell and Martin Bauer and Nikita Blinov and Karen Salomé Caballero-Mora and Jae Hyeok Chang and Eung Jin Chun and Raymond T. Co and Timothy Cohen and Peter Cox and Nathaniel Craig and Csaba Csáki and Yanou Cui and Francesco D'Eramo and Luigi Delle Rose and P. S. Bhupal Dev and Keith R. Dienes and Jeff A. Dror and Rouven Essig and Jared A. Evans and Jason L. Evans and Arturo Fernández Tellez and Oliver Fischer and Thomas Flacke and Anthony Fradette and Claudia Frugiuele and Elina Fuchs and Tony Gherghetta and Gian F. Giudice and Dmitry Gorbunov and Rick S. Gupta and Claudia Hagedorn and Lawrence J. Hall and Philip Harris and Juan Carlos Helo and Martin Hirsch and Yonit Hochberg and Anson Hook and Alejandro Ibarra and Seyda Ipek and Sunghoon Jung and Simon Knapen and Eric Kuflik and Zhen Liu and Salvator Lombardo and H. J. Lubatti and David McKeen and Emiliano Molinaro and Stefano Moretti and Natsumi Nagata and Matthias Neubert and Jose Miguel No and Emmanuel Olaiya and Gilad Perez and Michael E. Peskin and David Pinner and Maxim Pospelov and Matthew Reece and Dean J. Robinson and Mario Rodríguez Cahuantzi and Rinaldo Santonico and Matthias Schlaffer and Claire H. Shepherd-Themistocleous and Andrew Spray and Daniel Stolarski and Martin A. Subieta Vasquez and Raman Sundrum and Andrea Thamm and Brooks Thomas and Yuhsin Tsai and Brock Tweedie and Stephen M. West and Charles Young and Felix Yu and Bryan Zaldivar and Yongchao Zhang and Kathryn Zurek and José Zurita},
  journal= {arXiv preprint arXiv:1806.07396},
  year   = {2020}
}

Comments

213 pages, 73 figures. Extended Section 2 to add more detailed discussion of LLP reconstruction and analysis, and background rejection. Updated comparison of MATHUSLA RH neutrino sensitivity to other experiments. Updated analysis of long-lived ALPs produced in weak-scale processes and decaying to jets. Various clarifications, fixed typos, and added references. Results and conclusions unchanged

R2 v1 2026-06-23T02:35:07.847Z