Characterization of FBK 3D pixel sensor modules based on RD53A readout chip for the ATLAS ITk

Author:

Samy Md.A.A.,Lapertosa A.,Vannoli L.,Gemme C.,Dalla Betta G.-F.

Abstract

Abstract CERN is planning to upgrade its Large Hadron Collider to the High Luminosity phase (HL-LHC), pushing detector technologies to cope with unprecedently demanding performance in terms of particle rate and radiation hardness. The ATLAS experiment decided to equip the innermost layer (L0) of its Inner Tracker (ITk) with small-pitch 3D pixels of two different geometries, i.e., 25 µm × 100 µm for the central barrel and 50 µm × 50 µm for the lateral rings. A new generation of 3D pixels featuring these small-pitch dimensions and reduced active thickness (∼150 µm) has been developed to this purpose within a collaboration of INFN and FBK since 2014. Recently, the R&D activities have been focused on the characterization of modules based on sensors compatible with the RD53A readout chip, which were tested in laboratory and at beam lines. In this paper, we report on the characterization of modules irradiated with protons up to a fluence of 1 × 1016 neq/cm2, including threshold tuning and noise measurements, and results from beam tests performed at DESY. Moreover, we will discuss about the electrical characteristics at wafer level and at module level before and after irradiation.

Publisher

IOP Publishing

Subject

Mathematical Physics,Instrumentation

Cited by 4 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Serial powering scheme and performance analysis for the innermost layer (L0) of ATLAS ITk modules;Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment;2024-06

2. Test of ITk 3D sensor pre-production modules with ITkPixV1.1 chip;Journal of Instrumentation;2023-01-01

3. Cold temperature characterization of ring triplets based on RD53A readout chip;Journal of Instrumentation;2022-11-01

4. Progress in 3D Silicon Radiation Detectors;Frontiers in Physics;2022-06-03

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