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Title: Dark mesons at the LHC

Journal Article · · Journal of High Energy Physics (Online)
 [1];  [2];  [1];  [1]
  1. Univ. of Oregon, Eugene, OR (United States)
  2. Univ. of Notre Dame, IN (United States)

A new, strongly-coupled “dark” sector could be accessible to LHC searches now. These dark sectors consist of composites formed from constituents that are charged under the electroweak group and interact with the Higgs, but are neutral under Standard Model color. In these scenarios, the most promising target is the dark meson sector, consisting of dark vector-mesons as well as dark pions. In this paper we study dark meson production and decay at the LHC in theories that preserve a global SU(2) dark flavor symmetry. Dark pions — like the pions of QCD — can be pair-produced through resonant dark vector meson production, pp → ρD → πDπD, and decay in one of two distinct ways: “gaugephobic”, when πD→$$f\bar{f}$$' generally dominates; or “gaugephilic”, when πD → W + h, Z + h dominates once kinematically open. Unlike QCD, the decay π$$^D_0$$ → γγ is virtually absent due to the dark flavor symmetry. We recast a vast set of existing LHC searches to determine the current constraints on (and future opportunities for) dark meson production and decay. When mρD is slightly heavier than 2mπ$${_D}$$ and ρ$$^{±,0}_D$$ kinetically mixes with the weak gauge bosons, the 8 TeV same-sign lepton search strategy sets the best bound, mπ$${_D}$$ > 500 GeV. Yet, when only the ρ$$^0_D$$ kinetically mixes with hypercharge, we find the strongest LHC bound is mπ$${_D}$$ > 130 GeV, that is only slightly better than what LEP II achieved two decades ago. We find the relative insensitivity of LHC searches, especially at 13 TeV, can be blamed mainly on their penchant for high mass objects or large missing energy. Dedicated searches would undoubtedly yield substantially improved sensitivity. We provide a GitHub page to speed the implementation of these searches in future LHC analyses. Our findings for dark meson production and decay provide a strong motivation for model-independent searches of the form pp → A → B + C → SM SM + SM SM where the theoretical prejudice is for SM to be a 3rd generation quark or lepton, W, Z, or h.

Research Organization:
Univ. of Oregon, Eugene, OR (United States)
Sponsoring Organization:
USDOE Office of Science (SC), High Energy Physics (HEP); National Science Foundation (NSF)
Grant/Contract Number:
SC0011640; PHY-1520966; PHY-1820860
OSTI ID:
1601470
Journal Information:
Journal of High Energy Physics (Online), Vol. 2019, Issue 7; ISSN 1029-8479
Publisher:
Springer BerlinCopyright Statement
Country of Publication:
United States
Language:
English
Citation Metrics:
Cited by: 19 works
Citation information provided by
Web of Science

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Cited By (5)

Lattice gauge theory for physics beyond the Standard Model journal November 2019
Strongly interacting dark sectors in the early Universe and at the LHC through a simplified portal text January 2020
Lattice Gauge Theory for Physics Beyond the Standard Model text January 2019
Strongly interacting dark sectors in the early Universe and at the LHC through a simplified portal text January 2019
Signatures of Mirror Stars text January 2019

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