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Exotic quarks in Twin Higgs models

Cited 40 time in Web of Science Cited 49 time in Scopus
Authors

Cheng, Hsin-Chia; Jung, Sunghoon; Salvioni, Ennio; Tsai, Yuhsin

Issue Date
2016-03
Publisher
Springer Verlag
Citation
Journal of High Energy Physics, Vol.2016 No.3, p. 74
Abstract
Abstract: The Twin Higgs model provides a natural theory for the electroweak symmetry breaking without the need of new particles carrying the standard model gauge charges below a few TeV. In the low energy theory, the only probe comes from the mixing of the Higgs fields in the standard model and twin sectors. However, an ultraviolet completion is required below ∼ 10 TeV to remove residual logarithmic divergences. In non-supersymmetric completions, new exotic fermions charged under both the standard model and twin gauge symmetries have to be present to accompany the top quark, thus providing a high energy probe of the model. Some of them carry standard model color, and may therefore be copiously produced at current or future hadron colliders. Once produced, these exotic quarks can decay into a top together with twin sector particles. If the twin sector particles escape the detection, we have the irreducible stop-like signals. On the other hand, some twin sector particles may decay back into the standard model particles with long lifetimes, giving spectacular displaced vertex signals in combination with the prompt top quarks. This happens in the Fraternal Twin Higgs scenario with typical parameters, and sometimes is even necessary for cosmological reasons. We study the potential displaced vertex signals from the decays of the twin bottomonia, twin glueballs, and twin leptons in the Fraternal Twin Higgs scenario. Depending on the details of the twin sector, the exotic quarks may be probed up to ∼ 2.5TeV at the LHC and beyond 10TeV at a future 100TeV collider, providing a strong test of this class of ultraviolet completions.
ISSN
1126-6708
URI
https://hdl.handle.net/10371/216711
DOI
https://doi.org/10.1007/JHEP03(2016)074
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  • College of Natural Sciences
  • Department of Physics and Astronomy
Research Area Astroparticle Probes, Gravitational Wave, Quantum Cosmology, 핵 · 입자 물리와 우주론

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