A High-Granularity Timing Detector (HGTD) for the Phase-II upgrade of the ATLAS detector

被引:5
|
作者
Mazza, S. M. [1 ]
机构
[1] Univ Calif Santa Cruz, Santa Cruz, CA 95064 USA
来源
基金
美国能源部;
关键词
Timing detectors; Charge transport and multiplication in solid media; Particle tracking detectors; LGAD;
D O I
10.1088/1748-0221/14/10/C10028
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
The expected increase of the particle flux at the high-luminosity phase of the LHC (HL-LHC) with instantaneous luminosities up to L = 7.5 x 10(34) cm(-1) s(-1) will have a severe impact on the ATLAS detector performance. The pile-up is expected to increase on average to 200 interactions per bunch crossing. The reconstruction and trigger performance for electrons, photons as well as jets and transverse missing energy will be severely degraded in the end-cap and forward region, where the liquid Argon based electromagnetic calorimeter has coarser granularity and the inner tracker has poorer momentum resolution compared to the central region. A High Granularity Timing Detector (HGTD) is proposed in front of the liquid Argon end-cap calorimeters for pile-up mitigation and for bunch per bunch luminosity measurements. This device should cover the pseudo-rapidity range of 2.4 to about 4.0. Two Silicon sensors double-sided layers are foreseen to provide a precision timing information for minimum ionizing particle with a time resolution better than 50 pico-seconds per hit (i.e. 30 pico-seconds per track) in order to assign the particle to the correct vertex. Each readout cell has a transverse size of 1.3 mm x 1.3 mm leading to a highly granular detector with about 3 millions of readout electronics channels. Low-Gain Avalanche Detector (LGAD) technology has been chosen as it provides an internal gain good enough to reach large signal over noise ratio needed for excellent time resolution. Extensive LGAD research and development (R&D) campaigns are carried out to investigate the suitability of this new technology as timing sensors for HGTD. The related readout ASIC is also being studied extensively.
引用
收藏
页数:11
相关论文
共 50 条
  • [1] A High-Granularity Timing Detector for the ATLAS Phase-II upgrade
    Aboulhorma, Asmaa
    [J]. NINTH ANNUAL CONFERENCE ON LARGE HADRON COLLIDER PHYSICS, LHCP2021, 2021,
  • [2] A High-Granularity Timing Detector for the ATLAS Phase-II upgrade
    Casado, M. P.
    [J]. NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 2022, 1032
  • [3] A High-Granularity Timing Detector for the Phase-II upgrade of the ATLAS Detector System
    Agapopoulou, Christina
    [J]. 2017 IEEE NUCLEAR SCIENCE SYMPOSIUM AND MEDICAL IMAGING CONFERENCE (NSS/MIC), 2017,
  • [4] A High Granularity Timing Detector for the ATLAS Detector Phase-II Upgrade
    Imam, H.
    [J]. IEEE TRANSACTIONS ON NUCLEAR SCIENCE, 2022, 69 (04) : 677 - 686
  • [5] A High-Granularity Timing Detector for the Phase-II upgrade of the ATLAS calorimeter system: detector concept description and first beam test results
    Lacour, D.
    [J]. JOURNAL OF INSTRUMENTATION, 2018, 13
  • [6] A high granularity timing detector for the ATLAS Phase-II upgrade: Project overview and status
    Jia, Xuewei
    [J]. NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 2024, 1063
  • [8] A High-Granularity Timing Detector for the Phase-II upgrade of the ATLAS Calorimeter system: detector concept, description and R&D and beam test results
    Imam, H.
    [J]. ANIMMA 2021 - ADVANCEMENTS IN NUCLEAR INSTRUMENTATION MEASUREMENT METHODS AND THEIR APPLICATIONS, 2021, 253
  • [9] A High-Granularity Timing Detector for the Phase-II upgrade of the ATLAS Calorimeter system: detector concept, description, R&D and beam test results
    Garcia, L. Castillo
    [J]. JOURNAL OF INSTRUMENTATION, 2020, 15 (09):
  • [10] Radiation campaign of HPK prototype LGAD sensors for the High-Granularity Timing Detector (HGTD)
    Shi, X.
    Ayoub, M. K.
    da Costa, J. Barreiro Guimaraes
    Cui, H.
    Kiuchi, R.
    Fan, Y.
    Han, S.
    Huang, Y.
    Jing, M.
    Liang, Z.
    Liu, B.
    Liu, J.
    Lyu, F.
    Qi, B.
    Ran, K.
    Shan, L.
    Shi, L.
    Tan, Y.
    Wu, K.
    Xiao, S.
    Yang, T.
    Yang, Y.
    Yu, C.
    Zhao, M.
    Zhuang, X.
    Castillo Garcia, L.
    Gkougkousis, E. L.
    Grieco, C.
    Grinstein, S.
    Leite, M.
    Saito, G. T.
    Howard, A.
    Cindro, V
    Kramberger, G.
    Mandic, I
    Mikuz, M.
    d'Amen, G.
    Giacomini, G.
    Rossi, E.
    Tricoli, A.
    Chen, H.
    Ge, J.
    Li, C.
    Liang, H.
    Yang, X.
    Zhao, L.
    Zhao, Z.
    Zheng, X.
    Atanov, N.
    Davydov, Y.
    [J]. NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 2020, 979 (979):