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A Forward Calorimeter (FoCal) as upgrade for the ALICE experiment at CERN S. Muhuri a, M. Reicher b and T. Tsuji c a Variable Energy Cyclotron Centre,

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Presentation on theme: "A Forward Calorimeter (FoCal) as upgrade for the ALICE experiment at CERN S. Muhuri a, M. Reicher b and T. Tsuji c a Variable Energy Cyclotron Centre,"— Presentation transcript:

1 A Forward Calorimeter (FoCal) as upgrade for the ALICE experiment at CERN S. Muhuri a, M. Reicher b and T. Tsuji c a Variable Energy Cyclotron Centre, Kolkata, India b Department of Physics, Utrecht University, Utrecht, the Netherlands c CNS University of Tokyo, Japan Conventional Pad+micro-pad readout A tower of the FoCal is a single self-contained detector unit with full depth of the detectors. In order to fully absorb photons of 200 GeV a depth of 25 X0 is needed. The typical longitudinal segmentation will be 24 layers, made of a tungsten absorber and a detection plane of silicon sensors. The transverse size of a tower is driven by availability of silicon wafers in bulk which makes wafers of size either 6.3 cm×6.3 cm or 9.3 cm×9.3 cm. The transverse segmentation inside a tower should provide the required spatial resolution. This can be accomplished by layers with pads of typically 1 cm size, with some high resolution layers before shower maximum. Detector Simulation Detector simulation has been conducted using AliRoot or standalone GEANT4 to verify the detector performance. Basic characteristics such as sampling fraction, linearity, resolution, efficiency for single photon and pi0, sophisticated clustering logic have been checked. Hardware Development Since the channel density is so high, Application Specific Integrated Circuit (ASIC) has been developed. Specifications for the ASIC is summarized as follows. Prototype ASIC for pad readout has been fabricated and test will be done in the future. Motivation As an upgrade of the ALICE experiment at the CERN-LHC, we would like to build and install a Forward Electromagnetic Calorimeter (FoCal) to be placed in the pseudorapidity region of 2.5 < η < 4.5, at the position of the existing Photon Multiplicity Detector (PMD). The basic motivation of including the calorimeter in the forward direction is to study outstanding fundamental QCD problems at low Bjorken-x values, such as parton distributions in the nuclei, test of pQCD predictions and to probe high temperature and high density matter in greater detail. A comprehensive measurement of p-p, p-Pb and Pb-Pb collisions at the highest LHC energies will be required. For these measurements, the detector needs to be capable of measuring photons for energies up to at least E ~200 GeV/c. It should allow discrimination of direct photons from neutral pions in a large momentum range and should also provide reasonable jet energy measurements. At present, two possible designs are being considered based on silicon-tungsten calorimetry. We will present physics motivation of this project, measurement items, conceptual detector candidates, and basic performance for the measurements in this poster presentation. 120cm Eta=2.5 Eta=3.0 Eta=4.0 132 tower First segmentSecond segmentThird segment Si micro-padTungsten Si pad CPV One of the possible specifications W thickness: 3.5 mm (1X 0 ) wafer size: 9.3cmx9.3cmx0.525mm Si pad size: 1.1x1.1cm 2 (64 ch/wafer) Si micro pad : 1 x 1 mm 2 in preshower stage W+Si pad : 21 -25layers 3 or 4 longitudinal segments Summing up raw signal longitudinally in one segment Or readout from individual layers Si Pad sensor from Hamamatsu Size: 9.3x9.3 cm 2 Thickness: 535  m Pad size: 1.1x1.1 cm 2 Number of pads : 64 Cpad = 25pF, Idark =2- 10nA linearity <1% up to 200GeV 150 GeV 70 GeV 30 GeV Resolution: 22%/sqrt(E) + 1.6% Efficiency > 50% for E>60 GeV Efficiency >50% for E<50 GeV Two gamma clusters start to be merged 7 1.29 2 0.098 x cellid y cellid 57 12.32 77 22.39 71 16.76 78 16.82 42 12.73 29 4.55 Embed 4 gammas with 5mm separation. Cluster reconstructed based on the dynamical fuzzy c-mean Method (d-FCM). Legend Data count Total energy deposition in MeV Longitudinal shower profile Pi0 identification Efficiency by pads Pi0 identification Efficiency by micro-pads Pads readout : Dynamic range: 10fc (1/5MIP) – 200pC (500GeV  ) Cross talk < 1%. S/N=10@MIP Trigger capability Dual charge sensitive preamplifier with capacitive division Single preamp+dual shaper Dual transimpedance preamplifier Micro-pad readout: Dynamic range: 2fc – 500fc R&D of ASIC for micro-pads (1x1, 0.5x0.5mm 2 ) is under discussion. 200pF C low 560pF C high 5.6nF 10pF CSA PZ ASIC High side Low side First prototype Z = 1/  C + Z cf /A 2.5usec high low 3mm 4mm 4ch/chip Prototype chip (TSMC 0.5um) hspice simulation Position resolution by micro-pad


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