4.7 Article

Search for dijet resonances using events with three jets in proton-proton collisions at √s=13 TeV

期刊

PHYSICS LETTERS B
卷 805, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.physletb.2020.135448

关键词

CMS; Physics; Dijets; Resonances

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. Swiss Funding Agencies (Switzerland)
  70. MST (Taipei)
  71. ThEPCenter (Thailand)
  72. IPST (Thailand)
  73. STAR (Thailand)
  74. NSTDA (Thailand)
  75. TUBITAK (Turkey)
  76. TAEK (Turkey)
  77. NASU (Ukraine)
  78. STFC (United Kingdom)
  79. DOE (USA)
  80. NSF (USA)
  81. Marie-Curie program
  82. European Research Council
  83. European Union [675440, 752730, 765710]
  84. Leventis Foundation
  85. A.P. Sloan Foundation
  86. Alexander von Humboldt Foundation
  87. Belgian Federal Science Policy Office
  88. Fonds pour la Formation a la Recherche dans l'Industrie et dans l'Agriculture (FRIA-Belgium)
  89. Agentschap voor Innovatie door Wetenschap en Technologie (IWT-Belgium)
  90. F.R.S.-FNRS (Belgium) [30820817]
  91. FWO (Belgium) [30820817]
  92. Beijing Municipal Science & Technology Commission [Z181100004218003]
  93. Ministry of Education, Youth and Sports (MEYS) of the Czech Republic
  94. Hungarian Academy of Sciences
  95. New National Excellence Program UNKP
  96. NKFIA (Hungary) [123842, 123959, 124845, 124850, 125105, 128713, 128786, 129058]
  97. Council of Science and Industrial Research, India
  98. Foundation for Polish Science - European Union, Regional Development Fund
  99. Ministry of Science and Higher Education
  100. 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]
  101. National Priorities Research Program by Qatar National Research Fund
  102. Ministry of Science and Education (Russia) [3.2989.2017]
  103. Programa Estatal de Fomento de la Investigacion Cientifica y Tecnica de Excelencia Maria de Maeztu [MDM-2015-0509]
  104. Programa Severo Ochoa del Principado de Asturias
  105. Thalis program - EU-ESF
  106. Aristeia program - EU-ESF
  107. Greek NSRF
  108. Rachadapisek Sompot Fund for Postdoctoral Fellowship, Chulalongkorn University
  109. Chulalongkorn Academic into Its 2nd Century Project Advancement Project (Thailand)
  110. Nvidia Corporation
  111. Welch Foundation [C-1845]
  112. Weston Havens Foundation (USA)
  113. Science and Technology Facilities Council [ST/K003542/1, ST/K001639/1, ST/L005603/1, ST/N001273/1, ST/M004775/1] Funding Source: researchfish
  114. STFC [ST/N001273/1, ST/K001639/1, ST/S000739/1, ST/L005603/1, ST/M004775/1, ST/K003542/1, ST/S00078X/1] Funding Source: UKRI

向作者/读者索取更多资源

A search for a narrow resonance with a mass between 350 and 700 GeV, and decaying into a pair of jets, is performed using proton-proton collision events containing at least three jets. The data sample corresponds to an integrated luminosity of 18.3 fb(-1) recorded at root s = 13 TeV with the CMS detector. Data are collected with a technique known as data scouting, in which the events are reconstructed, selected, and recorded at a high rate in a compact form by the high-level trigger. The three-jet final state provides sensitivity to lower resonance masses than in previous searches using the data scouting technique. The spectrum of the dijet invariant mass, calculated from the two jets with the largest transverse momenta in the event, is used to search for a resonance. No significant excess over a smoothly falling background is found. Limits at 95% confidence level are set on the production cross section of a narrow dijet resonance and compared with the cross section of a vector dark matter mediator coupling to dark matter particles and quarks. Translating to a model where the narrow resonance interacts only with quarks, upper limits on this coupling range between 0.10 and 0.15, depending on the resonance mass. These results represent the most stringent upper limits in the mass range between 350 and 450 GeV obtained with a flavor-inclusive dijet resonance search. (C) 2020 The Author(s). Published by Elsevier B.V.

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