Performance of the CMS electromagnetic calorimeter in pp collisions at $\sqrt{s}$ = 13 TeV (2403.15518v2)
Abstract: The operation and performance of the Compact Muon Solenoid (CMS) electromagnetic calorimeter (ECAL) are presented, based on data collected in pp collisions at $\sqrt{s}$ = 13 TeV at the CERN LHC, in the years from 2015 to 2018 (LHC Run 2), corresponding to an integrated luminosity of 151 fb${-1}$. The CMS ECAL is a scintillating lead-tungstate crystal calorimeter, with a silicon strip preshower detector in the forward region that provides precise measurements of the energy and the time-of-arrival of electrons and photons. The successful operation of the ECAL is crucial for a broad range of physics goals, ranging from observing the Higgs boson and measuring its properties, to other standard model measurements and searches for new phenomena. Precise calibration, alignment, and monitoring of the ECAL response are important ingredients to achieve these goals. To face the challenges posed by the higher luminosity, which characterized the operation of the LHC in Run 2, the procedures established during the 2011-2012 run of the LHC have been revisited and new methods have been developed for the energy measurement and for the ECAL calibration. The energy resolution of the calorimeter, for electrons from Z boson decays reaching the ECAL without significant loss of energy by bremsstrahlung, was better than 1.8%, 3.0%, and 4.5% in the $\lvert\eta\rvert$ intervals [0.0, 0.8], [0.8, 1.5], [1.5, 2.5], respectively. This resulting performance is similar to that achieved during Run 1 in 2011-2012, in spite of the more severe running conditions.
- CMS Collaboration, “The CMS experiment at the CERN LHC”, JINST 3 (2008) S08004, 10.1088/1748-0221/3/08/S08004.
- CMS Collaboration, “Search for long-lived particles using delayed photons in proton-proton collisions at s=13\TeV𝑠13\TeV\sqrt{s}=13\TeVsquare-root start_ARG italic_s end_ARG = 13”, Phys. Rev. D 100 (2019) 112003, 10.1103/PhysRevD.100.112003, arXiv:1909.06166.
- CMS Collaboration, “Performance of the CMS Level-1 trigger in proton-proton collisions at s=13\TeV𝑠13\TeV\sqrt{s}=13\TeVsquare-root start_ARG italic_s end_ARG = 13”, JINST 15 (2020) P10017, 10.1088/1748-0221/15/10/P10017, arXiv:2006.10165.
- CMS Collaboration, “The CMS trigger system”, JINST 12 (2017) P01020, 10.1088/1748-0221/12/01/P01020, arXiv:1609.02366.
- CMS Collaboration, “The CMS electromagnetic calorimeter project: Technical design report”, Technical Report CERN-LHCC-97-033, 1997.
- CMS Collaboration, “Changes to CMS ECAL electronics: addendum to the technical design report”, Technical Report CERN-LHCC-2002-027, 2002.
- CMS Collaboration, “Precision luminosity measurement in proton-proton collisions at s=13\TeV𝑠13\TeV\sqrt{s}=13\TeVsquare-root start_ARG italic_s end_ARG = 13 in 2015 and 2016 at CMS”, Eur. Phys. J. 81 (2021) 800, 10.1140/epjc/s10052-021-09538-2, arXiv:2104.01927.
- CMS Collaboration, “CMS luminosity measurement for the 2017 data-taking period at s=13\TeV𝑠13\TeV\sqrt{s}=13\TeVsquare-root start_ARG italic_s end_ARG = 13”, CMS Physics Analysis Summary CMS-PAS-LUM-17-004, 2018.
- CMS Collaboration, “CMS luminosity measurement for the 2018 data-taking period at s=13\TeV𝑠13\TeV\sqrt{s}=13\TeVsquare-root start_ARG italic_s end_ARG = 13”, CMS Physics Analysis Summary CMS-PAS-LUM-18-002, 2019.
- CMS Collaboration, “Reconstruction of signal amplitudes in the CMS electromagnetic calorimeter in the presence of overlapping proton-proton interactions”, JINST 15 (2020) P10002, 10.1088/1748-0221/15/10/p10002, arXiv:2006.14359.
- P. Paganini, “CMS electromagnetic trigger commissioning and first operation experiences”, J. Phys.: Conf. Ser. 160 (2009) 012062, 10.1088/1742-6596/160/1/012062.
- CMS Collaboration, “CMS TriDAS project: Technical design report, volume 1: The trigger systems”, technical report, 2000.
- D. A. Petyt, “Anomalous APD signals in the CMS electromagnetic calorimeter”, Nucl. Instrum. Meth. A 695 (2012) 293, 10.1016/j.nima.2011.10.025.
- N. Almeida et al., “Data filtering in the readout of the CMS electromagnetic calorimeter”, JINST 3 (2008) P02011, 10.1088/1748-0221/3/02/P02011.
- N. Almeida et al., “The selective read-out processor for the CMS electromagnetic calorimeter”, IEEE Trans. Nucl. Sci. 52 (2005) 772, 10.1109/TNS.2005.850946.
- CMS Collaboration, “New development in the CMS ECAL Level-1 trigger system to meet the challenges of LHC Run 2”, Proceedings of Topical Workshop on Electronics for Particle Physics – PoS(TWEPP2018) 343 (2019) 052, 10.22323/1.343.0052.
- M. Anfreville et al., “Laser monitoring system for the CMS lead tungstate crystal calorimeter”, Nucl. Instrum. Meth. A 594 (2008) 292, 10.1016/j.nima.2008.01.104.
- P. Adzic et al., “Reconstruction of the signal amplitude of the CMS electromagnetic calorimeter”, Eur. Phys. J. C 46 (2006) 23, 10.1140/epjcd/s2006-02-002-x.
- J. Cantarella and M. Piatek, “Tsnnls: A solver for large sparse least squares problems with non-negative variables”, 2004. arXiv:cs/0408029.
- CMS Collaboration, “Time reconstruction and performance of the CMS electromagnetic calorimeter”, JINST 5 (2010) T03011, 10.1088/1748-0221/5/03/T03011.
- CMS Collaboration, “Particle-flow reconstruction and global event description with the CMS detector”, JINST 12 (2017) P10003, 10.1088/1748-0221/12/10/P10003, arXiv:1706.04965.
- CMS Collaboration, “Energy calibration and resolution of the CMS electromagnetic calorimeter in \Pp\Pp\Pp\Pp\Pp\Pp collisions at s=7\TeV𝑠7\TeV\sqrt{s}=7\TeVsquare-root start_ARG italic_s end_ARG = 7”, JINST 8 (2013) P09009, 10.1088/1748-0221/8/09/P09009, arXiv:1306.2016.
- CMS Collaboration, “Electron and photon reconstruction and identification with the CMS experiment at the CERN LHC”, JINST 16 (2021) P05014, 10.1088/1748-0221/16/05/p05014, arXiv:2012.06888.
- L. Zhang et al., “Performance of the monitoring light source for the CMS lead tungstate crystal calorimeter”, IEEE Trans. Nucl. Sci. 52 (2005) 1123, 10.1109/TNS.2005.852661.
- P. Bonamy and others, “The ECAL calibration use of the light monitoring system”, Technical Report CMS-NOTE-1998-013, 1998.
- J. Allison, “\GEANTfour developments and applications”, IEEE Trans. Nucl. Sci. 53 (2006) 270, 10.1109/TNS.2006.869826.
- GEANT4 Collaboration, “\GEANTfour— a simulation toolkit”, Nucl. Instrum. Meth. A 506 (2003) 250, 10.1016/S0168-9002(03)01368-8.
- CMS Collaboration, “Performance of photon reconstruction and identification with the CMS detector in proton-proton collisions at s=8\TeV𝑠8\TeV\sqrt{s}=8\TeVsquare-root start_ARG italic_s end_ARG = 8”, JINST 10 (2015) P08010, 10.1088/1748-0221/10/08/P08010.
- CMS Collaboration, “Measurement of the inclusive \PWand \PZproduction cross sections in \Pp\Pp\Pp\Pp\Pp\Pp collisions at s=7\TeV𝑠7\TeV\sqrt{s}=7\TeVsquare-root start_ARG italic_s end_ARG = 7 with the CMS experiment”, JHEP 10 (2011) 132, 10.1007/JHEP10(2011)132.
- D. del Re, “Timing performance of the CMS ECAL and prospects for the future”, J. Phys.: Conf. Ser. 587 (2015) 012003, 10.1088/1742-6596/587/1/012003.
- Particle Data Group, M. Tanabashi et al., “Review of particle physics”, Phys. Rev. D 98 (2018) 030001, 10.1103/PhysRevD.98.030001.
- P. Meridiani and R. Paramatti, “Use of \PZ→\Pep\Pem→\PZ\Pep\Pem\PZ\to\Pep\Pem→ events for ECAL calibration”, Technical Report CMS-NOTE-2006-039, 2006.
- F. Couderc, “Quest for the Higgs boson(s) from D0 to CMS experiments”. Habilitation à diriger des recherches, Sorbonne Université, 2018.
- B. L. Roberts, R. A. J. Riddle, and G. T. A. Squier, “Measurement of Lorentzian linewidths”, Nucl. Instrum. Meth. A 130 (1975) 559, 10.1016/0029-554X(75)90058-0.
- “Unified analytical approximation of Gaussian and Voigtian lineshapes”, Nucl. Instrum. Meth. A 431 (1999) 548, 10.1016/S0168-9002(99)00287-9.
Paper Prompts
Sign up for free to create and run prompts on this paper using GPT-5.
Top Community Prompts
Collections
Sign up for free to add this paper to one or more collections.