Abstract
AbstractIn this work, we present a search for the possible production of Dark Matter particles at the Large Hadron Collider alongside a new hypothetical neutral gauge boson denoted by $${Z}^{\prime }$$
Z
′
. The topology of the studied events is dimuons plus large missing transverse momentum. The study is performed using the CMS open data samples collected by the CMS experiment in the LHC proton–proton collisions at center-of-mass energy of 8 TeV in 2012, which corresponds to an integrated luminosity of 11.6 $$\hbox {fb}^{-1}$$
fb
-
1
, and the corresponding CMS open Monte Carlo samples. Two benchmark scenarios were used for interpreting the data, the Dark Higgs scenario and the effective field theory formalism. No evidence for the existence of dark matter candidates was found. 95$$\%$$
%
confidence level limits are set on the masses of the $${Z}^{\prime }$$
Z
′
and the cutoff scale of the effective field theory.
Funder
British University in Egypt
Publisher
Springer Science and Business Media LLC
Subject
General Physics and Astronomy,Fluid Flow and Transfer Processes
Reference56 articles.
1. R.J. Scherrer, M.S. Turner, On the relic, cosmic abundance of stable, weakly interacting massive particles. Phys. Rev. D 33, 1585 (1986). ([iNSPIRE-HEP])
2. Planck Collaboration, Planck 2015 results. XIII. Cosmological parameters, Astron. Astrophys. 594 A13 (2016). [arXiv:1502.01589] [iNSPIRE-HEP]
3. V. Trimble, Existence and nature of dark matter in the universe. Ann. Rev. Astron. Astrophys. 25, 425–472 (1987). ([iNSPIRE-HEP])
4. G. Bertone, D. Hooper, J. Silk, Particle dark matter: evidence, candidates and constraints. Phys. Rept. 405, 279–390 (2005). [arXiv:hep-ph/0404175] [iNSPIRE-HEP]
5. K. Abazajian, G.M. Fuller, M. Patel, Sterile neutrino hot, warm, and cold dark matter. Phys. Rev. D 64, 023501 (2001). [arXiv:astro-ph/0101524] [iNSPIRE-HEP]
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