4.8 Article

Measurement of the Soft-Drop Jet Mass in pp Collisions at root s=13 TeV with the ATLAS Detector

期刊

PHYSICAL REVIEW LETTERS
卷 121, 期 9, 页码 -

出版社

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevLett.121.092001

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资金

  1. ANPCyT, Argentina
  2. YerPhI, Armenia
  3. ARC, Australia
  4. BMWFW, Austria
  5. FWF, Austria
  6. ANAS, Azerbaijan
  7. SSTC, Belarus
  8. CNPq, Brazil
  9. FAPESP, Brazil
  10. NSERC, Canada
  11. NRC, Canada
  12. CFI, Canada
  13. CERN
  14. CONICYT, Chile
  15. CAS, China
  16. MOST, China
  17. NSFC, China
  18. COLCIENCIAS, Colombia
  19. MSMT CR, Czech Republic
  20. MPO CR, Czech Republic
  21. VSC CR, Czech Republic
  22. DNRF, Denmark
  23. DNSRC, Denmark
  24. IN2P3-CNRS, France
  25. CEA-DRF/IRFU, France
  26. SRNSFG, Georgia
  27. BMBF, Germany
  28. HGF, Germany
  29. MPG, Germany
  30. GSRT, Greece
  31. RGC, Hong Kong SAR, China
  32. ISF, Israel
  33. I-CORE, Israel
  34. Benoziyo Center, Israel
  35. INFN, Italy
  36. MEXT, Japan
  37. JSPS, Japan
  38. CNRST, Morocco
  39. NWO, Netherlands
  40. RCN, Norway
  41. MNiSW, Poland
  42. NCN, Poland
  43. FCT, Portugal
  44. MNE/IFA, Romania
  45. MES of Russia, Russian Federation
  46. NRC KI, Russian Federation
  47. JINR
  48. MESTD, Serbia
  49. MSSR, Slovakia
  50. ARRS, Slovenia
  51. MIZS, Slovenia
  52. DST/NRF, South Africa
  53. MINECO, Spain
  54. SRC, Sweden
  55. Wallenberg Foundation, Sweden
  56. SERI, Switzerland
  57. SNSF, Switzerland
  58. Canton of Bern, Switzerland
  59. Canton of Geneva, Switzerland
  60. MOST, Taiwan
  61. TAEK, Turkey
  62. STFC, United Kingdom
  63. DOE, United States of America
  64. NSF, United States of America
  65. BCKDF, Canada
  66. Canada Council, Canada
  67. CANARIE, Canada
  68. CRC, Canada
  69. Compute Canada, Canada
  70. FQRNT, Canada
  71. Ontario Innovation Trust, Canada
  72. EPLANET, European Union
  73. ERC, European Union
  74. ERDF, European Union
  75. FP7, European Union
  76. Horizon 2020, European Union
  77. Marie Sklodowska-Curie Actions, European Union
  78. Investissements d'Avenir Labex and Idex, France
  79. ANR, France
  80. Region Auvergne, France
  81. Fondation Partager le Savoir, France
  82. DFG, Germany
  83. AvH Foundation, Germany
  84. Herakleitos, Thales
  85. EU-ESF
  86. Greek NSRF
  87. BSF, Israel
  88. GIF, Israel
  89. Minerva, Israel
  90. BRF, Norway
  91. CERCA Programme Generalitat de Catalunya, Spain
  92. Generalitat Valenciana, Spain
  93. Royal Society, United Kingdom
  94. Leverhulme Trust, United Kingdom
  95. STFC [ST/N000447/1, ST/N000420/1, ST/N000277/1] Funding Source: UKRI
  96. Division Of Physics [1624739] Funding Source: National Science Foundation

向作者/读者索取更多资源

Jet substructure observables have significantly extended the search program for physics beyond the standard model at the Large Hadron Collider. The state-of-the-art tools have been motivated by theoretical calculations, but there has never been a direct comparison between data and calculations of jet substructure observables that are accurate beyond leading-logarithm approximation. Such observables are significant not only for probing the collinear regime of QCD that is largely unexplored at a hadron collider, but also for improving the understanding of jet substructure properties that are used in many studies at the Large Hadron Collider. This Letter documents a measurement of the first jet substructure quantity at a hadron collider to be calculated at next-to-next-to-leading-logarithm accuracy. The normalized, differential cross section is measured as a function of log(10)rho(2), where rho is the ratio of the soft-drop mass to the ungroomed jet transverse momentum. This quantity is measured in dijet events from 32.9 fb(-1) of root s = 13 TeV proton-proton collisions recorded by the ATLAS detector. The data are unfolded to correct for detector effects and compared to precise QCD calculations and leading-logarithm particle-level Monte Carlo simulations.

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