Layout and Performance of HPK Prototype LGAD Sensors for the High-Granularity Timing Detector
Abstract
The High-Granularity Timing Detector is a detector proposed for the ATLAS Phase II upgrade. The detector, based on the Low-Gain Avalanche Detector (LGAD) technology will cover the pseudo-rapidity region of with two end caps on each side and a total area of 6.4 . The timing performance can be improved by implanting an internal gain layer that can produce signal with a fast rising edge, which improve significantly the signal-to-noise ratio. The required average timing resolution per track for a minimum-ionising particle is 30 ps at the start and 50 ps at the end of the HL-LHC operation. This is achieved with several layers of LGAD. The innermost region of the detector would accumulate a 1 MeV-neutron equivalent fluence up to before being replaced during the scheduled shutdowns. The addition of this new detector is expected to play an important role in the mitigation of high pile-up at the HL-LHC. The layout and performance of the various versions of LGAD prototypes produced by Hamamatsu (HPK) have been studied by the ATLAS Collaboration. The breakdown voltages, depletion voltages, inter-pad gaps, collected charge as well as the time resolution have been measured and the production yield of large size sensors has been evaluated.
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Cite
@article{arxiv.2003.14071,
title = {Layout and Performance of HPK Prototype LGAD Sensors for the High-Granularity Timing Detector},
author = {X. Yang and S. Alderweireldt and N. Atanov and M. K. Ayoub and J. Barreiro Guimaraes da Costa and L. Castillo Garcia and H. Chen and S. Christie and V. Cindro and H. Cui and G. D'Amen and Y. Davydov and Y. Y. Fan and Z. Galloway and J. J. Ge and C. Gee and G. Giacomini and E. L. Gkougkousis and C. Grieco and S. Grinstein and J. Grosse-Knetter and S. Guindon and S. Han and A. Howard and Y. P. Huang and Y. Jin and M. Q. Jing and R. Kiuchi and G. Kramberger and E. Kuwertz and C. Labitan and J. Lange and M. Leite and C. H. Li and Q. Y. Li and B. Liu and J. Y. Liu and Y. W. Liu and H. Liang and Z. J. Liang and M. Lockerby and F. Lyu and I. Mandić and F. Martinez-Mckinney and S. M. Mazza and M. Mikuž and R. Padilla and B. H. Qi and A. Quadt and K. L. Ran and H. Ren and C. Rizzi and E. Rossi and H. F. -W. Sadrozinski and G. T. Saito and B. Schumm and M. Schwickardi and A. Seiden and L. Y. Shan and L. S. Shi and X. Shi and A. Soares Canas Ferreira and Y. J. Sun and Y. H. Tan and A. Tricoli and G. Y. Wan and M. Wilder and K. W. Wu and W. Wyatt and S. Y. Xiao and T. Yang and Y. Z. Yang and C. J. Yu and L. Zhao and M. Zhao and Y. Zhao and Z. G. Zhao and X. X. Zheng and X. A. Zhuang},
journal= {arXiv preprint arXiv:2003.14071},
year = {2020}
}
Comments
17 pages, 20 figures