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Radiation hardness and timing studies of a monolithic TowerJazz pixel design for the new ATLAS Inner Tracker

A part of the upcoming HL-LHC upgrade of the ATLAS Detector is the construction of a new Inner Tracker. This upgrade opens new possibilities, but also presents challenges in terms of occupancy and radiation tolerance. For the pixel detector inside the inner tracker, hybrid modules containing passive...

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Autores principales: Riegel, C, Backhaus, M, Hoorne, J W Van, Kugathasan, T, Musa, L, Pernegger, H, Riedler, P, Schaefer, D, Snoeys, W, Wagner, W
Formato: info:eu-repo/semantics/article
Lenguaje:eng
Publicado: JINST 2017
Materias:
Acceso en línea:https://dx.doi.org/10.1088/1748-0221/12/01/C01015
http://cds.cern.ch/record/2274862
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author Riegel, C
Backhaus, M
Hoorne, J W Van
Kugathasan, T
Musa, L
Pernegger, H
Riedler, P
Schaefer, D
Snoeys, W
Wagner, W
author_facet Riegel, C
Backhaus, M
Hoorne, J W Van
Kugathasan, T
Musa, L
Pernegger, H
Riedler, P
Schaefer, D
Snoeys, W
Wagner, W
author_sort Riegel, C
collection CERN
description A part of the upcoming HL-LHC upgrade of the ATLAS Detector is the construction of a new Inner Tracker. This upgrade opens new possibilities, but also presents challenges in terms of occupancy and radiation tolerance. For the pixel detector inside the inner tracker, hybrid modules containing passive silicon sensors and connected readout chips are presently used, but require expensive assembly techniques like fine-pitch bump bonding. Silicon devices fabricated in standard commercial CMOS technologies, which include part or all of the readout chain, are also investigated offering a reduced cost as they are cheaper per unit area than traditional silicon detectors. If they contain the full readout chain, as for a fully monolithic approach, there is no need for the expensive flip-chip assembly, resulting in a further cost reduction and material savings. In the outer pixel layers of the ATLAS Inner Tracker, the pixel sensors must withstand non-ionising energy losses of up to 10(15) n/cm(2) and offer a timing resolution of 25 ns or less. This paper presents test results obtained on a monolithic test chip, the TowerJazz 180nm Investigator, towards these specifications. The presented program of radiation hardness and timing studies has been launched to investigate this technology's potential for the new ATLAS Inner Tracker.
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spelling oai-inspirehep.net-15085542019-10-15T15:19:08Z doi:10.1088/1748-0221/12/01/C01015 http://cds.cern.ch/record/2274862 eng Riegel, C Backhaus, M Hoorne, J W Van Kugathasan, T Musa, L Pernegger, H Riedler, P Schaefer, D Snoeys, W Wagner, W Radiation hardness and timing studies of a monolithic TowerJazz pixel design for the new ATLAS Inner Tracker Detectors and Experimental Techniques 6: Novel high voltage and resistive CMOS sensors A part of the upcoming HL-LHC upgrade of the ATLAS Detector is the construction of a new Inner Tracker. This upgrade opens new possibilities, but also presents challenges in terms of occupancy and radiation tolerance. For the pixel detector inside the inner tracker, hybrid modules containing passive silicon sensors and connected readout chips are presently used, but require expensive assembly techniques like fine-pitch bump bonding. Silicon devices fabricated in standard commercial CMOS technologies, which include part or all of the readout chain, are also investigated offering a reduced cost as they are cheaper per unit area than traditional silicon detectors. If they contain the full readout chain, as for a fully monolithic approach, there is no need for the expensive flip-chip assembly, resulting in a further cost reduction and material savings. In the outer pixel layers of the ATLAS Inner Tracker, the pixel sensors must withstand non-ionising energy losses of up to 10(15) n/cm(2) and offer a timing resolution of 25 ns or less. This paper presents test results obtained on a monolithic test chip, the TowerJazz 180nm Investigator, towards these specifications. The presented program of radiation hardness and timing studies has been launched to investigate this technology's potential for the new ATLAS Inner Tracker. info:eu-repo/grantAgreement/EC/FP7/654168 info:eu-repo/semantics/openAccess Education Level info:eu-repo/semantics/article http://cds.cern.ch/record/2274862 JINST JINST, 01 (2017) pp. C01015 2017
spellingShingle Detectors and Experimental Techniques
6: Novel high voltage and resistive CMOS sensors
Riegel, C
Backhaus, M
Hoorne, J W Van
Kugathasan, T
Musa, L
Pernegger, H
Riedler, P
Schaefer, D
Snoeys, W
Wagner, W
Radiation hardness and timing studies of a monolithic TowerJazz pixel design for the new ATLAS Inner Tracker
title Radiation hardness and timing studies of a monolithic TowerJazz pixel design for the new ATLAS Inner Tracker
title_full Radiation hardness and timing studies of a monolithic TowerJazz pixel design for the new ATLAS Inner Tracker
title_fullStr Radiation hardness and timing studies of a monolithic TowerJazz pixel design for the new ATLAS Inner Tracker
title_full_unstemmed Radiation hardness and timing studies of a monolithic TowerJazz pixel design for the new ATLAS Inner Tracker
title_short Radiation hardness and timing studies of a monolithic TowerJazz pixel design for the new ATLAS Inner Tracker
title_sort radiation hardness and timing studies of a monolithic towerjazz pixel design for the new atlas inner tracker
topic Detectors and Experimental Techniques
6: Novel high voltage and resistive CMOS sensors
url https://dx.doi.org/10.1088/1748-0221/12/01/C01015
http://cds.cern.ch/record/2274862
http://cds.cern.ch/record/2274862
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