Abstract
This paper presents the electron and photon energy calibration obtained with the ATLAS detector using 140 fb−1 of LHC proton-proton collision data recorded at √s = 13 TeV between 2015 and 2018. Methods for the measurement of electron and photon energies are outlined, along with the current knowledge of the passive material in front of the ATLAS electromagnetic calorimeter. The energy calibration steps are discussed in detail, with emphasis on the improvements introduced in this paper. The absolute energy scale is set using a large sample of Z-boson decays into electron-positron pairs, and its residual dependence on the electron energy is used for the first time to further constrain systematic uncertainties. The achieved calibration uncertainties are typically 0.05% for electrons from resonant Z-boson decays, 0.4% at ET ∼ 10 GeV, and 0.3% at ET ∼ 1 TeV; for photons at ET ∼ 60 GeV, they are 0.2% on average. This is more than twice as precise as the previous calibration. The new energy calibration is validated using J/Ψ → ee and radiative Z-boson decays.
Original language | English |
---|---|
Article number | P02009 |
Pages (from-to) | 1-55 |
Number of pages | 57 |
Journal | Journal of Instrumentation |
Volume | 19 |
Issue number | 2 |
DOIs | |
Publication status | Published - Feb 2024 |
Externally published | Yes |
Bibliographical note
Copyright the Author(s) 2024. Version archived for private and non-commercial use with the permission of the author/s and according to publisher conditions. For further rights please contact the publisher.Keywords
- Calorimeter methods
- Pattern recognition
- cluster finding
- calibration and fitting methods
- Performance of High Energy Physics Detectors
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In: Journal of Instrumentation, Vol. 19, No. 2, P02009, 02.2024, p. 1-55.
Research output: Contribution to journal › Article › peer-review
TY - JOUR
T1 - Electron and photon energy calibration with the ATLAS detector using LHC Run 2 data
AU - The ATLAS collaboration
AU - Aad, G.
AU - Abbott, B.
AU - Abeling, K.
AU - Abicht, N. J.
AU - Abidi, S. H.
AU - Aboulhorma, A.
AU - Abramowicz, H.
AU - Abreu, H.
AU - Abulaiti, Y.
AU - Acharya, B. S.
AU - Bourdarios, C. Adam
AU - Adamczyk, L.
AU - Addepalli, S. V.
AU - Addison, M. J.
AU - Adelman, J.
AU - Adiguzel, A.
AU - Adye, T.
AU - Affolder, A. A.
AU - Afik, Y.
AU - Agaras, M. N.
AU - Agarwala, J.
AU - Aggarwal, A.
AU - Agheorghiesei, C.
AU - Ahmad, A.
AU - Ahmadov, F.
AU - Ahmed, W. S.
AU - Ahuja, S.
AU - Ai, X.
AU - Aielli, G.
AU - Aikot, A.
AU - Tamlihat, M. Ait
AU - Aitbenchikh, B.
AU - Aizenberg, I.
AU - Akbiyik, M.
AU - Åkesson, T. P.A.
AU - Akimov, A. V.
AU - Akiyama, D.
AU - Akolkar, N. N.
AU - Khoury, K. Al
AU - Alberghi, G. L.
AU - Albert, J.
AU - Albicocco, P.
AU - Albouy, G. L.
AU - Alderweireldt, S.
AU - Aleksa, M.
AU - Aleksandrov, I. N.
AU - Alexa, C.
AU - Alexopoulos, T.
AU - Alfonsi, F.
AU - Algren, M.
AU - Alhroob, M.
AU - Ali, B.
AU - Ali, H. M.J.
AU - Ali, S.
AU - Alibocus, S. W.
AU - Aliev, M.
AU - Alimonti, G.
AU - Alkakhi, W.
AU - Allaire, C.
AU - Allbrooke, B. M.M.
AU - Allen, J. F.
AU - Flores, C. A.Allendes
AU - Allport, P. P.
AU - Aloisio, A.
AU - Alonso, F.
AU - Alpigiani, C.
AU - Estevez, M. Alvarez
AU - Fernandez, A. Alvarez
AU - Cardoso, M. Alves
AU - Alviggi, M. G.
AU - Aly, M.
AU - Coutinho, Y. Amaral
AU - Ambler, A.
AU - Amelung, C.
AU - Amerl, M.
AU - Ames, C. G.
AU - Amidei, D.
AU - Dos Santos, S. P.Amor
AU - Amos, K. R.
AU - Ananiev, V.
AU - Anastopoulos, C.
AU - Andeen, T.
AU - Anders, J. K.
AU - Andrean, S. Y.
AU - Andreazza, A.
AU - Angelidakis, S.
AU - Angerami, A.
AU - Anisenkov, A. V.
AU - Annovi, A.
AU - Antel, C.
AU - Anthony, M. T.
AU - Antipov, E.
AU - Antonelli, M.
AU - Anulli, F.
AU - Aoki, M.
AU - Aoki, T.
AU - Pozo, J. A.Aparisi
AU - Aparo, M. A.
AU - Bella, L. Aperio
AU - Appelt, C.
AU - Apyan, A.
AU - Aranzabal, N.
AU - Val, S. J.Arbiol
AU - Arcangeletti, C.
AU - Arce, A. T.H.
AU - Arena, E.
AU - Arguin, J. F.
AU - Argyropoulos, S.
AU - Arling, J. H.
AU - Arnaez, O.
AU - Arnold, H.
AU - Artoni, G.
AU - Asada, H.
AU - Asai, K.
AU - Asai, S.
AU - Asbah, N. A.
AU - Assahsah, J.
AU - Assamagan, K.
AU - Astalos, R.
AU - Atashi, S.
AU - Atkin, R. J.
AU - Atkinson, M.
AU - Atmani, H.
AU - Atmasiddha, P. A.
AU - Augsten, K.
AU - Auricchio, S.
AU - Auriol, A. D.
AU - Austrup, V. A.
AU - Avolio, G.
AU - Axiotis, K.
AU - Azuelos, G.
AU - Babal, D.
AU - Bachacou, H.
AU - Bachas, K.
AU - Bachiu, A.
AU - Backman, F.
AU - Badea, A.
AU - Baer, T. M.
AU - Bagnaia, P.
AU - Bahmani, M.
AU - Bailey, A. J.
AU - Bailey, V. R.
AU - Baines, J. T.
AU - Baines, L.
AU - Baker, O. K.
AU - Bakos, E.
AU - Gupta, D. Bakshi
AU - Balakrishnan, V.
AU - Balasubramanian, R.
AU - Baldin, E. M.
AU - Balek, P.
AU - Ballabene, E.
AU - Balli, F.
AU - Baltes, L. M.
AU - Balunas, W. K.
AU - Balz, J.
AU - Banas, E.
AU - Bandieramonte, M.
AU - Bandyopadhyay, A.
AU - Bansal, S.
AU - Barak, L.
AU - Barakat, M.
AU - Barberio, E. L.
AU - Barberis, D.
AU - Barbero, M.
AU - Barel, M. Z.
AU - Barends, K. N.
AU - Barillari, T.
AU - Barisits, M. S.
AU - Barklow, T.
AU - Baron, P.
AU - Moreno, D. A.Baron
AU - Baroncelli, A.
AU - Barone, G.
AU - Barr, A. J.
AU - Barr, J. D.
AU - Navarro, L. Barranco
AU - Barreiro, F.
AU - Guimarães da Costa, J. Barreiro
AU - Barron, U.
AU - Teixeira, M. G.Barros
AU - Barsov, S.
AU - Bartels, F.
AU - Bartoldus, R.
AU - Barton, A. E.
AU - Bartos, P.
AU - Basan, A.
AU - Baselga, M.
AU - Bassalat, A.
AU - Basso, M. J.
AU - Basson, C. R.
AU - Bates, R. L.
AU - Batlamous, S.
AU - Batley, J. R.
AU - Batool, B.
AU - Battaglia, M.
AU - Battulga, D.
AU - Bauce, M.
AU - Bauer, M.
AU - Bauer, P.
AU - Hurrell, L. T.Bazzano
AU - Beacham, J. B.
AU - Beau, T.
AU - Beaucamp, J. Y.
AU - Beauchemin, P. H.
AU - Becherer, F.
AU - Bechtle, P.
AU - Beck, H. P.
AU - Becker, K.
AU - Beddall, A. J.
AU - Bednyakov, V. A.
AU - Bee, C. P.
AU - Beemster, L. J.
AU - Beermann, T. A.
AU - Begalli, M.
AU - Begel, M.
AU - Behera, A.
AU - Behr, J. K.
AU - Beirer, J. F.
AU - Beisiegel, F.
AU - Belfkir, M.
AU - Bella, G.
AU - Bellagamba, L.
AU - Bellerive, A.
AU - Bellos, P.
AU - Beloborodov, K.
AU - Benchekroun, D.
AU - Bendebba, F.
AU - Benhammou, Y.
AU - Benoit, M.
AU - Bensinger, J. R.
AU - Bentvelsen, S.
AU - Beresford, L.
AU - Beretta, M.
AU - Kuutmann, E. Bergeaas
AU - Berger, N.
AU - Bergmann, B.
AU - Beringer, J.
AU - Bernardi, G.
AU - Bernius, C.
AU - Bernlochner, F. U.
AU - Bernon, F.
AU - Guardia, A. Berrocal
AU - Berry, T.
AU - Berta, P.
AU - Berthold, A.
AU - Bertram, I. A.
AU - Bethke, S.
AU - Betti, A.
AU - Shojaii, J.
N1 - Copyright the Author(s) 2024. Version archived for private and non-commercial use with the permission of the author/s and according to publisher conditions. For further rights please contact the publisher.
PY - 2024/2
Y1 - 2024/2
N2 - This paper presents the electron and photon energy calibration obtained with the ATLAS detector using 140 fb−1 of LHC proton-proton collision data recorded at √s = 13 TeV between 2015 and 2018. Methods for the measurement of electron and photon energies are outlined, along with the current knowledge of the passive material in front of the ATLAS electromagnetic calorimeter. The energy calibration steps are discussed in detail, with emphasis on the improvements introduced in this paper. The absolute energy scale is set using a large sample of Z-boson decays into electron-positron pairs, and its residual dependence on the electron energy is used for the first time to further constrain systematic uncertainties. The achieved calibration uncertainties are typically 0.05% for electrons from resonant Z-boson decays, 0.4% at ET ∼ 10 GeV, and 0.3% at ET ∼ 1 TeV; for photons at ET ∼ 60 GeV, they are 0.2% on average. This is more than twice as precise as the previous calibration. The new energy calibration is validated using J/Ψ → ee and radiative Z-boson decays.
AB - This paper presents the electron and photon energy calibration obtained with the ATLAS detector using 140 fb−1 of LHC proton-proton collision data recorded at √s = 13 TeV between 2015 and 2018. Methods for the measurement of electron and photon energies are outlined, along with the current knowledge of the passive material in front of the ATLAS electromagnetic calorimeter. The energy calibration steps are discussed in detail, with emphasis on the improvements introduced in this paper. The absolute energy scale is set using a large sample of Z-boson decays into electron-positron pairs, and its residual dependence on the electron energy is used for the first time to further constrain systematic uncertainties. The achieved calibration uncertainties are typically 0.05% for electrons from resonant Z-boson decays, 0.4% at ET ∼ 10 GeV, and 0.3% at ET ∼ 1 TeV; for photons at ET ∼ 60 GeV, they are 0.2% on average. This is more than twice as precise as the previous calibration. The new energy calibration is validated using J/Ψ → ee and radiative Z-boson decays.
KW - Calorimeter methods
KW - Pattern recognition
KW - cluster finding
KW - calibration and fitting methods
KW - Performance of High Energy Physics Detectors
UR - http://www.scopus.com/inward/record.url?scp=85185886671&partnerID=8YFLogxK
U2 - 10.1088/1748-0221/19/02/P02009
DO - 10.1088/1748-0221/19/02/P02009
M3 - Article
AN - SCOPUS:85185886671
SN - 1748-0221
VL - 19
SP - 1
EP - 55
JO - Journal of Instrumentation
JF - Journal of Instrumentation
IS - 2
M1 - P02009
ER -