Exposing a fibre-based dual-readout calorimeter to a positron beam

被引:6
作者
Ampilogov, N. [1 ,2 ]
Cometti, S. [1 ,2 ]
Agarwala, J. [3 ,4 ]
Chmill, V. [5 ]
Ferrari, R. [4 ]
Gaudio, G. [4 ]
Giacomelli, P. [6 ]
Giaz, A. [1 ,2 ]
Karadzhinova-Ferrer, A. [5 ]
Loeschcke-Centeno, A. [7 ]
Negri, A. [3 ,4 ]
Pezzotti, L. [8 ]
Polesello, G. [4 ]
Proserpio, E. [1 ]
Ribon, A. [8 ]
Santoro, R. [1 ,2 ]
Vivarelli, I. [7 ]
机构
[1] Univ Insubria, DiSAT, Via Valleggio 11, Como, Italy
[2] INFN, Sez Milano, Via Celoria 16, Milan, Italy
[3] Univ Pavia, Dipartimento Fis, Via Bassi 6, Pavia, Italy
[4] INFN, Sez Pavia, Via Bassi 6, Pavia, Italy
[5] RBI Zagreb, Bijenicka Cesta 54, Zagreb, Croatia
[6] INFN, Sez Bologna, Viale Berti Pichat 52, Bologna, Italy
[7] Univ Sussex, Phys & Astron Dept, Pevensey 2, Falmer, England
[8] CERN, Esplanade Particules 1, Geneva, Switzerland
关键词
Calorimeter methods; Calorimeters; HADRON;
D O I
10.1088/1748-0221/18/09/P09021
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
A prototype of a dual-readout calorimeter using brass capillary tubes surrounding scintillating and clear plastic optical fibres was tested using beams of particles with energies between 10 and 100 GeV produced by the CERN SPS. The scope of the test was to characterise the performance of the tube-based detector response to positrons in terms of response linearity, energy resolution, and lateral granularity. After calibrating the detector and processing the output signal to correct for the energy dependency on the particle impact point, the linearity of the measurement was found to be better than 1%. The response to positron was compared to that predicted by a Geant4-based simulation, finding good agreement both in terms of energy resolution and shower profile. These results confirm the validity of the tube-based mechanical option and SiPM readout as a promising one for future developments.
引用
收藏
页数:23
相关论文
共 26 条
[1]   FCC-ee: The Lepton Collider: Future Circular Collider Conceptual Design Report Volume 2 [J].
Abada, A. ;
Abbrescia, M. ;
AbdusSalam, S. S. ;
Abdyukhanov, I. ;
Fernandez, J. Abelleira ;
Abramov, A. ;
Aburaia, M. ;
Acar, A. O. ;
Adzic, P. R. ;
Agrawal, P. ;
Aguilar-Saavedra, J. A. ;
Aguilera-Verdugo, J. J. ;
Aiba, M. ;
Aichinger, I. ;
Aielli, G. ;
Akay, A. ;
Akhundov, A. ;
Aksakal, H. ;
Albacete, J. L. ;
Albergo, S. ;
Alekou, A. ;
Aleksa, M. ;
Aleksan, R. ;
Fernandez, R. M. Alemany ;
Alexahin, Y. ;
Alia, R. G. ;
Alioli, S. ;
Tehrani, N. Alipour ;
Allanach, B. C. ;
Allport, P. P. ;
Altinli, M. ;
Altmannshofer, W. ;
Ambrosio, G. ;
Amorim, D. ;
Amstutz, O. ;
Anderlini, L. ;
Andreazza, A. ;
Andreini, M. ;
Andriatis, A. ;
Andris, C. ;
Andronic, A. ;
Angelucci, M. ;
Antinori, F. ;
Antipov, S. A. ;
Antonelli, M. ;
Antonello, M. ;
Antonioli, P. ;
Antusch, S. ;
Anulli, F. ;
Apolinario, L. .
EUROPEAN PHYSICAL JOURNAL-SPECIAL TOPICS, 2019, 228 (02) :261-623
[2]   GEANT4-a simulation toolkit [J].
Agostinelli, S ;
Allison, J ;
Amako, K ;
Apostolakis, J ;
Araujo, H ;
Arce, P ;
Asai, M ;
Axen, D ;
Banerjee, S ;
Barrand, G ;
Behner, F ;
Bellagamba, L ;
Boudreau, J ;
Broglia, L ;
Brunengo, A ;
Burkhardt, H ;
Chauvie, S ;
Chuma, J ;
Chytracek, R ;
Cooperman, G ;
Cosmo, G ;
Degtyarenko, P ;
Dell'Acqua, A ;
Depaola, G ;
Dietrich, D ;
Enami, R ;
Feliciello, A ;
Ferguson, C ;
Fesefeldt, H ;
Folger, G ;
Foppiano, F ;
Forti, A ;
Garelli, S ;
Giani, S ;
Giannitrapani, R ;
Gibin, D ;
Cadenas, JJG ;
González, I ;
Abril, GG ;
Greeniaus, G ;
Greiner, W ;
Grichine, V ;
Grossheim, A ;
Guatelli, S ;
Gumplinger, P ;
Hamatsu, R ;
Hashimoto, K ;
Hasui, H ;
Heikkinen, A ;
Howard, A .
NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 2003, 506 (03) :250-303
[3]  
Akchurin N, 2013, Arxiv, DOI arXiv:1307.5538
[4]   Comparison of high-energy electromagnetic shower profiles measured with scintillation and Cherenkov light [J].
Akchurin, N ;
Carrell, K ;
Hauptman, J ;
Kim, H ;
Penzo, A ;
Thomas, R ;
Wigmans, R .
NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 2005, 548 (03) :336-354
[5]   Hadron and jet detection with a dual-readout calorimeter [J].
Akchurin, N ;
Carrell, K ;
Hauptman, J ;
Kim, H ;
Paar, HP ;
Penzo, A ;
Thomas, R ;
Wigmans, R .
NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 2005, 537 (03) :537-561
[6]   Electron detection with a dual-readout calorimeter [J].
Akchurin, N ;
Carrell, K ;
Hauptman, J ;
Kim, H ;
Paar, HP ;
Penzo, A ;
Thomas, R ;
Wigmans, R .
NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 2005, 536 (1-2) :29-51
[7]   The electromagnetic performance of the RD52 fiber calorimeter [J].
Akchurin, N. ;
Bedeschi, F. ;
Cardini, A. ;
Cascella, M. ;
Cei, F. ;
De Pedis, D. ;
Ferrari, R. ;
Fracchia, S. ;
Franchino, S. ;
Fraternali, M. ;
Gaudio, G. ;
Genova, P. ;
Hauptman, J. ;
La Rotonda, L. ;
Lee, S. ;
Livan, M. ;
Meoni, E. ;
Moggi, A. ;
Pinci, D. ;
Policicchio, A. ;
Saraiva, J. G. ;
Scuri, F. ;
Sill, A. ;
Venturelli, T. ;
Wigmans, R. .
NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 2014, 735 :130-144
[8]   Tests of a dual-readout fiber calorimeter with SiPM light sensors [J].
Antonello, M. ;
Caccia, M. ;
Cascella, M. ;
Dunser, M. ;
Ferrari, R. ;
Franchino, S. ;
Gaudio, G. ;
Hall, K. ;
Hauptman, J. ;
Jo, H. ;
Kang, K. ;
Kim, B. ;
Lee, S. ;
Lerner, G. ;
Pezzotti, L. ;
Santoro, R. ;
Vivarelli, I. ;
Ye, R. ;
Wigmans, R. .
NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 2018, 899 :52-64
[9]  
CEPC Study Group, CEPC Conceptual Design Report: Volume 2 - Physics & Detector
[10]  
CERN LINEAR COLLIDER DETECTOR collaboration,, 2013, AIDA-NOTE-2015-012