4.7 Article

Search for standard model production of four top quarks in proton-proton collisions at √s=13TeV

Journal

PHYSICS LETTERS B
Volume 772, Issue -, Pages 336-358

Publisher

ELSEVIER
DOI: 10.1016/j.physletb.2017.06.064

Keywords

CMS; Physics; Top; BSM

Funding

  1. BMWFW (Austria)
  2. FWF (Austria)
  3. FNRS (Belgium)
  4. FWO (Belgium)
  5. CNPq (Brazil)
  6. CAPES (Brazil)
  7. FAPERJ (Brazil)
  8. FAPESP (Brazil)
  9. MES (Bulgaria)
  10. CERN
  11. CAS (China)
  12. MOST (China)
  13. NSFC (China)
  14. COLCIENCIAS (Colombia)
  15. MSES (Croatia)
  16. CSF (Croatia)
  17. RPF (Cyprus)
  18. SENESCYT (Ecuador)
  19. MoER (Estonia)
  20. ERC (Estonia)
  21. IUT (Estonia)
  22. ERDF (Estonia)
  23. Academy of Finland (Finland)
  24. MEC (Finland)
  25. HIP (Finland)
  26. CEA (France)
  27. CNRS/IN2P3 (France)
  28. BMBF (Germany)
  29. DFG (Germany)
  30. HGF (Germany)
  31. GSRT (Greece)
  32. OTKA (Hungary)
  33. NIH (Hungary)
  34. DAE (India)
  35. DST (India)
  36. IPM (Iran)
  37. SFI (Ireland)
  38. INFN (Italy)
  39. MSIP (Republic of Korea)
  40. NRF (Republic of Korea)
  41. LAS (Lithuania)
  42. MOE (Malaysia)
  43. UM (Malaysia)
  44. BUAP (Mexico)
  45. CINVESTAV (Mexico)
  46. CONACYT (Mexico)
  47. LNS (Mexico)
  48. SEP (Mexico)
  49. UASLP-FAI (Mexico)
  50. MBIE (New Zealand)
  51. PAEC (Pakistan)
  52. MSHE (Poland)
  53. NSC (Poland)
  54. FCT (Portugal)
  55. JINR (Dubna)
  56. MON (Russia)
  57. RosAtom (Russia)
  58. RAS (Russia)
  59. RFBR (Russia)
  60. RAEP(Russia)
  61. MESTD (Serbia)
  62. SEIDI (Spain)
  63. CPAN (Spain)
  64. PCTI (Spain)
  65. FEDER (Spain)
  66. Swiss Funding Agencies (Switzerland)
  67. MST (Taipei)
  68. ThEP-Center (Thailand)
  69. IPST (Thailand)
  70. STAR (Thailand)
  71. NSTDA (Thailand)
  72. TUBITAK (Turkey)
  73. TAEK (Turkey)
  74. NASU (Ukraine)
  75. SFFR (Ukraine)
  76. STFC (United Kingdom)
  77. DOE (USA)
  78. NSF (USA)
  79. Marie-Curie program
  80. European Research Council (European Union)
  81. EPLANET (European Union)
  82. Leventis Foundation
  83. A. P. Sloan Foundation
  84. Alexander von Humboldt Foundation
  85. Belgian Federal Science Policy Office
  86. Fonds pour la Formation a la Recherche dans l'Industrie et dans l'Agriculture (FRIA-Belgium)
  87. Agentschap voor Innovatie door Wetenschap en Technologie (IWT-Belgium)
  88. Ministry of Education, Youth and Sports (MEYS) of the Czech Republic
  89. Council of Scientific and Industrial Research, India
  90. HOMING PLUS program of the Foundation for Polish Science
  91. European Union
  92. European Regional Development Fund
  93. Mobility Plus program of the Ministry of Science and Higher Education
  94. National Science Center (Poland) [Harmonia 2014/14/M/ST2/00428, Opus 2014/13/B/ST2/02543, 2014/15/B/ST2/03998, 2015/19/B/ST2/02861, Sonata-bis 2012/07/E/ST2/01406]
  95. National Priorities Research Program by Qatar National Research Fund
  96. Programa Clarin-COFUND del Principado de Asturias
  97. Thalis program - EU-ESF
  98. Aristeia program - EU-ESF
  99. Greek NSRF
  100. Rachadapisek Sompot Fund for Postdoctoral Fellowship, Chulalongkorn University
  101. Chulalongkorn Academic into Its 2nd Century Project Advancement Project (Thailand)
  102. Welch Foundation [C-1845]
  103. STFC [ST/H000925/1, PP/E000479/1] Funding Source: UKRI
  104. Science and Technology Facilities Council [1207881, CMS, GRIDPP, PP/E000479/1, ST/H000925/1] Funding Source: researchfish
  105. Direct For Mathematical & Physical Scien
  106. Division Of Physics [1606321, 1506130, 1607202] Funding Source: National Science Foundation
  107. Division Of Physics
  108. Direct For Mathematical & Physical Scien [1151640, 1506168, 1624356, 1211067] Funding Source: National Science Foundation

Ask authors/readers for more resources

A search for events containing four top quarks (t (t) over bart (t) over bar) is reported from proton-proton collisions recorded by the CMS experiment at root s = 13 TeV and corresponding to an integrated luminosity of 2.6 fb(-1). The analysis considers the single-lepton (e or mu)+jets and the opposite-sign dilepton (mu(+)mu(-),mu +/- e -/+ , or e(+) e(-))+ jets channels. It uses boosted decision trees to combine information on the global event and jet properties to distinguish between t (t) over bart (t) over bar and t (t) over bar production. The number of events observed after all selection requirements is consistent with expectations from background and standard model signal predictions, and an upper limit is set on the cross section for t (t) over bart (t) over bar production in the standard model of 94 fb at 95% confidence level (10.2 x the prediction), with an expected limit of 118 fb. This is combined with the results from the published CMS search in the same-sign dilepton channel, resulting in an improved limit of 69 fb at 95% confidence level (7.4xthe prediction), with an expected limit of 71 fb. These are the strongest constraints on the rate of t (t) over bart (t) over bar production to date. (C) 2017 The Author(s). Published by Elsevier B.V.

Authors

I am an author on this paper
Click your name to claim this paper and add it to your profile.

Reviews

Primary Rating

4.7
Not enough ratings

Secondary Ratings

Novelty
-
Significance
-
Scientific rigor
-
Rate this paper

Recommended

No Data Available
No Data Available