Electron and photon energy calibration with the ATLAS detector using LHC Run 1 data
(CERN, 1211, Geneva 23, Switzerland); G. Aad (CPPM, Aix-Marseille Université and CNRS/IN2P3, Marseille, France); B. Abbott (Homer L. Dodge Department of Physics and Astronomy, University of Oklahoma, Norman, OK, USA); J. Abdallah (Institute of Physics, Academia Sinica, Taipei, Taiwan); S. Abdel Khalek (LAL, Université Paris-Sud and CNRS/IN2P3, Orsay, France); et al - Show all 2894 authors
This paper presents the electron and photon energy calibration achieved with the ATLAS detector using about 25Â fb -1 of LHC protonâproton collision data taken at centre-of-mass energies of s=7 and 8Â TeV. The reconstruction of electron and photon energies is optimised using multivariate algorithms. The response of the calorimeter layers is equalised in data and simulation, and the longitudinal profile of the electromagnetic showers is exploited to estimate the passive material in front of the calorimeter and reoptimise the detector simulation. After all corrections, the Z resonance is used to set the absolute energy scale. For electrons from Z decays, the achieved calibration is typically accurate to 0.05Â % in most of the detector acceptance, rising to 0.2Â % in regions with large amounts of passive material. The remaining inaccuracy is less than 0.2â1Â % for electrons with a transverse energy of 10Â GeV, and is on average 0.3Â % for photons. The detector resolution is determined with a relative inaccuracy of less than 10Â % for electrons and photons up to 60Â GeV transverse energy, rising to 40Â % for transverse energies above 500Â GeV.