4.4 Article

Search for physics beyond the standard model in multilepton final states in proton-proton collisions at √s=13 TeV

期刊

JOURNAL OF HIGH ENERGY PHYSICS
卷 -, 期 3, 页码 -

出版社

SPRINGER
DOI: 10.1007/JHEP03(2020)051

关键词

Beyond Standard Model; Hadron-Hadron scattering (experiments)

资金

  1. BMBWF (Austria)
  2. FWF (Austria)
  3. FNRS (Belgium)
  4. FWO (Belgium)
  5. CNPq (Brazil)
  6. CAPES (Brazil)
  7. FAPERJ (Brazil)
  8. FAPERGS (Brazil)
  9. FAPESP (Brazil)
  10. MES (Bulgaria)
  11. CERN
  12. CAS (China)
  13. MoST (China)
  14. NSFC (China)
  15. COLCIENCIAS (Colombia)
  16. MSES (Croatia)
  17. CSF (Croatia)
  18. RPF (Cyprus)
  19. SENESCYT (Ecuador)
  20. MoER (Estonia)
  21. ERC IUT (Estonia)
  22. PUT (Estonia)
  23. ERDF (Estonia)
  24. Academy of Finland (Finland)
  25. MEC (Finland)
  26. HIP (Finland)
  27. CEA (France)
  28. CNRS/IN2P3 (France)
  29. BMBF (Germany)
  30. DFG (Germany)
  31. HGF (Germany)
  32. GSRT (Greece)
  33. NKFIA (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. MES (Latvia)
  42. LAS (Lithuania)
  43. MOE (Malaysia)
  44. UM (Malaysia)
  45. BUAP (Mexico)
  46. CINVESTAV (Mexico)
  47. CONACYT (Mexico)
  48. LNS (Mexico)
  49. SEP (Mexico)
  50. UASLP-FAI (Mexico)
  51. MOS (Montenegro)
  52. MBIE (New Zealand)
  53. PAEC (Pakistan)
  54. MSHE (Poland)
  55. NSC (Poland)
  56. FCT (Portugal)
  57. JINR (Dubna)
  58. MON (Russia)
  59. RosAtom (Russia)
  60. RAS (Russia)
  61. RFBR (Russia)
  62. NRC KI (Russia)
  63. MESTD (Serbia)
  64. SEIDI (Spain)
  65. CPAN (Spain)
  66. PCTI (Spain)
  67. FEDER (Spain)
  68. MOSTR (Sri Lanka)
  69. MST (Taipei)
  70. ThEPCenter (Thailand)
  71. IPST (Thailand)
  72. STAR (Thailand)
  73. NSTDA (Thailand)
  74. TUBITAK (Turkey)
  75. TAEK (Turkey)
  76. NASU (Ukraine)
  77. STFC (United Kingdom)
  78. DOE (U.S.A.)
  79. NSF (U.S.A.)
  80. Horizon 2020 (European Union) [675440, 752730, 765710]
  81. Marie-Curie program (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 Formationa la Recherche dans l'Industrie et dans l'Agriculture (FRIA-Belgium)
  87. Agentschap voor Innovatie door Wetenschap en Technologie (IWT-Belgium)
  88. F.R.S.-FNRS (Belgium)
  89. Beijing Municipal Science AMP
  90. Technology Commission, [Z181100004218003]
  91. Ministry of Education, Youth and Sports (MEYS) of the Czech Republic
  92. Hungarian Academy of Sciences (Hungary)
  93. New National Excellence Program UNKP (Hungary)
  94. NKFIA (Hungary) [123842, 123959, 124845, 124850, 125105, 128713, 128786, 129058]
  95. Council of Science and Industrial Research, India
  96. HOMING PLUS program of the Foundation for Polish Science
  97. European Union, Regional Development Fund
  98. Mobility Plus program of the Ministry of Science and Higher Education
  99. 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, Sonatabis 2012/07/E/ST2/01406]
  100. National Priorities Research Program by Qatar National Research Fund
  101. Ministry of Science and Education (Russia) [3.2989.2017]
  102. Programa Estatal de Fomento de la Investigacion Cientifica y Tecnica de Excelencia Maria de Maeztu [MDM-2015-0509]
  103. Programa Severo Ochoa del Principado de Asturias
  104. Thalis program
  105. Aristeia program
  106. EU-ESF
  107. Greek NSRF
  108. Rachadapisek Sompot Fund for Postdoctoral Fellowship, Chulalongkorn University (Thailand)
  109. Chulalongkorn Academic into Its 2nd Century Project Advancement Project (Thailand)
  110. Nvidia Corporation
  111. Welch Foundation [C-1845]
  112. Weston Havens Foundation (U.S.A.)
  113. European Research Council (European Union)

向作者/读者索取更多资源

A search for physics beyond the standard model in events with at least three charged leptons (electrons or muons) is presented. The data sample corresponds to an integrated luminosity of 137 fb(-1) of proton-proton collisions at root s = 13 TeV, collected with the CMS detector at the LHC in 2016-2018. The two targeted signal processes are pair production of type-III seesaw heavy fermions and production of a light scalar or pseudoscalar boson in association with a pair of top quarks. The heavy fermions may be manifested as an excess of events with large values of leptonic transverse momenta or missing transverse momentum. The light scalars or pseudoscalars may create a localized excess in the dilepton mass spectra. The results exclude heavy fermions of the type-III seesaw model for masses below 880 GeV at 95% confidence level in the scenario of equal branching fractions to each lepton flavor. This is the most restrictive limit on the flavor-democratic scenario of the type-III seesaw model to date. Assuming a Yukawa coupling of unit strength to top quarks, branching fractions of new scalar (pseudoscalar) bosons to dielectrons or dimuons above 0.004 (0.03) and 0.04 (0.03) are excluded at 95% confidence level for masses in the range 15-75 and 108-340 GeV, respectively. These are the first limits in these channels on an extension of the standard model with scalar or pseudoscalar particles.

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