English

Probing Squeezed Bino-Slepton Spectra with the Large Hadron Collider

High Energy Physics - Phenomenology 2017-11-01 v2

Abstract

We consider a Minimal Supersymmetric Standard Model scenario in which the only light superparticles are a bino-like dark matter candidate and a nearly-degenerate slepton. It is notoriously difficult to probe this scenario at the Large Hadron Collider, because the slepton pair-production process yields a final state with soft leptons and small missing transverse energy. We study this scenario in the region of parameter space where the mass difference between the lightest neutralino and the lightest slepton (Δm\Delta m) is 60 GeV\lesssim 60~{\rm GeV}, focusing on the process in which an additional radiated jet provides a transverse boost to the slepton pair. We then utilize the angular separation of the leptons from each other and from the missing transverse energy, as well as the angular separation between the jet and the missing transverse energy, to distinguish signal from background events. We also use the reconstructed ditau mass, the cosθ+\cos \theta^*_{\ell^+ \ell^-} variable, and for larger Δm\Delta m, a lower bound on the lepton pTp_T. These cuts can dramatically improve both signal sensitivity and the signal-to-background ratio, permitting discovery at the Large Hadron Collider with reasonable integrated luminosity over the interesting region of parameter space. Using our search strategy the LHC will be able to exclude mμ~200m_{\tilde{\mu}} \approx 200 GeV for Δm60\Delta m \lesssim 60 GeV at 1.53σ1.5-3 \sigma with 1000 fb1^{-1} of integrated luminosity. Although we focus on a particular model, the results generalize to a variety of scenarios in which the dark matter and a leptonic partner are nearly degenerate in mass, and especially to scenarios featuring a scalar mediator.

Keywords

Cite

@article{arxiv.1706.05339,
  title  = {Probing Squeezed Bino-Slepton Spectra with the Large Hadron Collider},
  author = {Bhaskar Dutta and Kebur Fantahun and Ashen Fernando and Tathagata Ghosh and Jason Kumar and Pearl Sandick and Patrick Stengel and Joel W. Walker},
  journal= {arXiv preprint arXiv:1706.05339},
  year   = {2017}
}

Comments

21 pages, 14 figures, 5 tables, as published in Physical Review D

R2 v1 2026-06-22T20:21:06.305Z