Superpartners at LHC and Future Colliders: Predictions from Constrained Compactified M-Theory
arXiv:1408.1961
Abstract
We study a realistic top-down M-theory compactification with low-scale effective Supersymmetry, consistent with phenomenological constraints. A combination of top-down and generic phenomenological constraints fix the spectrum. The gluino mass is predicted to be about 1.5 TeV. Three and only three superpartner channels, , and (where are Wino-like), are expected to be observable at LHC-14. We also investigate the prospects of finding heavy squarks and Higgsinos at future colliders. Gluino-stop-top, gluino-sbottom-bottom associated production and first generation squark associated production should be observable at a 100 TeV collider, along with direct production of heavy Higgsinos. Within this framework the discovery of a single sparticle is sufficient to determine uniquely the SUSY spectrum, yielding a number of concrete testable predictions for LHC-14 and future colliders, and determination of and thereby other fundamental quantities.
19 pages, 4 figures
References in corpus (8)
- The automated computation of tree-level and next-to-leading order differential cross sections, and their matching to parton shower simulations
- Measurement of the Higgs boson mass from the and channels with the ATLAS detector using 25 fb of collision data
- Neutralino Dark Matter at 14 and 100 TeV
- Non-thermal Dark Matter and the Moduli Problem in String Frameworks
- A Redux on "When is the Top Quark a Parton?"
- Mixed Wino-Axion Dark Matter in String/M Theory and the 130 GeV Gamma-line "Signal"
- R-Parity Conservation from a Top Down Perspective
- Theoretical Prediction and Impact of Fundamental Electric Dipole Moments