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Searches for Electroweak SUSY: Motivation and Models

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Electroweak Physics at the Large Hadron Collider with the ATLAS Detector

Part of the book series: Springer Theses ((Springer Theses))

Abstract

Even though there is no deviation in the standard model measurement and the theory prediction, as shown in Chap. 5, there are still open questions to the SM that SUSY can answer. In order to search for SUSY, the production cross sections of the various SUSY production modes must be calculated, as shown in Fig. 6.1.

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References

  1. Borschensky C, Kramer M, Kulesza A, Mangano M, Padhi S, Plehn T, Portell X (2014) Squark and gluino production cross sections in pp collisions at \(\sqrt{s}\) = 13, 14, 33 and 100 TeV. Eur Phys J C 74:3174 arXiv:1407.5066 [hep-ph]

    Article  ADS  Google Scholar 

  2. Beenakker W, Borschensky C, Krmer M, Kulesza A, Laenen E (2016) NNLL-fast: predictions for coloured supersymmetric particle production at the LHC with threshold and Coulomb resummation. JHEP 12:133 arXiv:1607.07741 [hep-ph]

    Article  ADS  Google Scholar 

  3. Collaboration ATLAS (2018) Search for squarks and gluinos in final states with jets and missing transverse momentum using 36 fb\(^{-1}\) of \(\sqrt{s}=13\) TeV pp collision data with the ATLAS detector. Phys Rev D 97(11):112001 arXiv:1712.02332 [hep-ex]

    Article  ADS  Google Scholar 

  4. ATLAS Collaboration (2018) Search for supersymmetry in final states with missing transverse momentum and multiple \(b\)-jets in proton-proton collisions at \( \sqrt{s}=13 \) TeV with the ATLAS detector. JHEP 06, 107. arXiv:1711.01901 [hep-ex]

  5. Collaboration ATLAS (2017) Search for supersymmetry in final states with two same-sign or three leptons and jets using 36 fb\(^{-1}\) of \(\sqrt{s}=13\) TeV \(pp\) collision data with the ATLAS detector. JHEP 09:084 arXiv:1706.03731 [hep-ex]

    Google Scholar 

  6. Collaboration ATLAS (2017) Search for squarks and gluinos in events with an isolated lepton, jets, and missing transverse momentum at \(\sqrt{s}=13\) TeV with the ATLAS detector. Phys Rev D 96(11):112010 arXiv:1708.08232 [hep-ex]

    Article  ADS  Google Scholar 

  7. Collaboration ATLAS (2018) Search for new phenomena using the invariant mass distribution of same-flavour opposite-sign dilepton pairs in events with missing transverse momentum in \(\sqrt{s}=13\)\(\text{ Te }\text{ V }\) pp collisions with the ATLAS detector. Eur Phys J C78(8):625 arXiv:1805.11381 [hep-ex]

    Google Scholar 

  8. Collaboration ATLAS (2019) Search for squarks and gluinos in final states with hadronically decaying \(\tau \)-leptons, jets, and missing transverse momentum using \(pp\) collisions at \(\sqrt{s}\) = 13 TeV with the ATLAS detector. Phys Rev D 99(1):012009 arXiv:1808.06358 [hep-ex]

    Article  ADS  Google Scholar 

  9. Collaboration ATLAS (2018) Search for photonic signatures of gauge-mediated supersymmetry in 13 TeV \(pp\) collisions with the ATLAS detector. Phys Rev D 97(9):092006 arXiv:1802.03158 [hep-ex]

    Article  ADS  Google Scholar 

  10. Collaboration ATLAS (2017) Search for a scalar partner of the top quark in the jets plus missing transverse momentum final state at \(\sqrt{s}\)=13 TeV with the ATLAS detector. JHEP 12:085 arXiv:1709.04183 [hep-ex]

    Google Scholar 

  11. Collaboration ATLAS (2018) Search for top-squark pair production in final states with one lepton, jets, and missing transverse momentum using 36 fb\(^{-1}\) of \( \sqrt{s}=13 \) TeV pp collision data with the ATLAS detector. JHEP 06:108 arXiv:1711.11520 [hep-ex]

    Google Scholar 

  12. Collaboration ATLAS (2017) Search for direct top squark pair production in final states with two leptons in \(\sqrt{s} = 13\) TeV \(pp\) collisions with the ATLAS detector. Eur Phys J C77(12):898 arXiv:1708.03247 [hep-ex]

    Google Scholar 

  13. Collaboration ATLAS (2018) Search for dark matter and other new phenomena in events with an energetic jet and large missing transverse momentum using the ATLAS detector. JHEP 01:126 arXiv:1711.03301 [hep-ex]

    Google Scholar 

  14. Collaboration ATLAS (2018) Search for supersymmetry in final states with charm jets and missing transverse momentum in 13 TeV \(pp\) collisions with the ATLAS detector. JHEP 09:050 arXiv:1805.01649 [hep-ex]

    Google Scholar 

  15. ATLAS Collaboration (2015) ATLAS Run 1 searches for direct pair production of third-generation squarks at the Large Hadron Collider. Eur Phys J C75:10, 510. arXiv:1506.08616 [hep-ex]. [Erratum: Eur Phys J C76:3, 153 (2016)]

  16. Debove J, Fuks B, Klasen M (2011) Threshold resummation for gaugino pair production at hadron colliders. Nucl Phys B 842:51–85 arXiv:1005.2909 [hep-ph]

    Article  ADS  Google Scholar 

  17. Fuks B, Klasen M, Lamprea DR, Rothering M (2013) Precision predictions for electroweak superpartner production at hadron colliders with Resummino. Eur Phys J C 73:2480 arXiv:1304.0790 [hep-ph]

    Article  ADS  Google Scholar 

  18. Fuks B, Klasen M, Lamprea DR, Rothering M (2012) Gaugino production in proton-proton collisions at a center-of-mass energy of 8 TeV. JHEP 10:081 arXiv:1207.2159 [hep-ph]

    Article  ADS  Google Scholar 

  19. Fiaschi J, Klasen M (2018) Neutralino-chargino pair production at NLO+NLL with resummation-improved parton density functions for LHC Run II. Phys Rev D98:5, 055014 (2018). arXiv:1805.11322 [hep-ph]

  20. Bozzi G, Fuks B, Klasen M (2007) Threshold resummation for slepton-pair production at hadron colliders. Nucl Phys B777, 157–181. arXiv:hep-ph/0701202 [hep-ph]

  21. Fiaschi J, Klasen M (2018) Slepton pair production at the LHC in NLO+NLL with resummation-improved parton densities. JHEP 03:094 arXiv:1801.10357 [hep-ph]

    Article  ADS  Google Scholar 

  22. Martin SP, A supersymmetry primer. arXiv:hep-ph/9709356 [hep-ph]. [Adv Ser Direct High Energy Phys 18, 1 (1998)]

  23. Griest K, Seckel D (1991) Three exceptions in the calculation of relic abundances. Phys Rev D 43:3191–3203

    Article  ADS  Google Scholar 

  24. Edsjo J, Gondolo P (1997) Neutralino relic density including coannihilations. Phys Rev D 56:1879–1894 arXiv:hep-ph/9704361

    Article  ADS  Google Scholar 

  25. Baer H, Krupovnickas T, Mustafayev A, Park E-K, Profumo S, Tata X (2005) Exploring the BWCA (bino-wino co-annihilation) scenario for neutralino dark matter. JHEP 12:011. arXiv:hep-ph/0511034 [hep-ph]

  26. Harigaya K, Kaneta K, Matsumoto S (2014) Gaugino coannihilations. Phys Rev D 89(11):115021 arXiv:1403.0715 [hep-ph]

    Article  ADS  Google Scholar 

  27. de Vries KJ et al (2015) The pMSSM10 after LHC Run 1. Eur Phys J C 75(9):422 arXiv:1504.03260 [hep-ph]

    Article  ADS  Google Scholar 

  28. Papucci M, Ruderman JT, Weiler A (2012) Natural SUSY endures. JHEP 09:035 arXiv:1110.6926 [hep-ph]

    Google Scholar 

  29. Kawamura J, Omura Y (2017) Study of dark matter physics in non-universal gaugino mass scenario. JHEP 08:072 arXiv:1703.10379 [hep-ph]

    Article  ADS  Google Scholar 

  30. Han Z, Kribs GD, Martin A, Menon A (2014) Hunting quasidegenerate Higgsinos. Phys Rev D 89(7):075007 arXiv:1401.1235 [hep-ph]

    Article  ADS  Google Scholar 

  31. Baer H, Choi K-Y, Kim JE, Roszkowski L (2015) Dark matter production in the early Universe: beyond the thermal WIMP paradigm. Phys Rep 555:1–60 arXiv:1407.0017 [hep-ph]

    Article  ADS  MathSciNet  Google Scholar 

  32. Choi K-Y, Kim JE, Lee HM, Seto O (2008) Neutralino dark matter from heavy axino decay. Phys Rev D 77:123501 arXiv:0801.0491 [hep-ph]

    Article  ADS  Google Scholar 

  33. Baer H, Lessa A, Rajagopalan S, Sreethawong W (2011) Mixed axion/neutralino cold dark matter in supersymmetric models. JCAP 1106:031 arXiv:1103.5413 [hep-ph]

    Article  ADS  Google Scholar 

  34. Arkani-Hamed N, Delgado A, Giudice GF (2006) The well-tempered neutralino. Nucl Phys B741: 108–130. arXiv:hep-ph/0601041 [hep-ph]

  35. Profumo S, Stefaniak T, Haskins LS (2017) The not-so-well tempered neutralino. Phys Rev D 96(5):055018 arXiv:1706.08537 [hep-ph]

    Article  ADS  Google Scholar 

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Correspondence to Elodie Resseguie .

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Resseguie, E. (2020). Searches for Electroweak SUSY: Motivation and Models. In: Electroweak Physics at the Large Hadron Collider with the ATLAS Detector. Springer Theses. Springer, Cham. https://doi.org/10.1007/978-3-030-57016-3_6

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