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Development of n-in-p pixel modules for the ATLAS Upgrade at HL-LHC

Thin planar pixel modules are promising candidates to instrument the inner layers of the new ATLAS pixel detector for HL-LHC, thanks to the reduced contribution to the material budget and their high charge collection efficiency after irradiation. 100–200 μm thick sensors, interconnected to FE-I4 rea...

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Autores principales: Macchiolo, Anna, Nisius, Richard, Savic, Natascha, Terzo, Stefano
Formato: info:eu-repo/semantics/article
Lenguaje:eng
Publicado: Nucl. Instrum. Methods Phys. Res., A 2016
Materias:
Acceso en línea:https://dx.doi.org/10.1016/j.nima.2016.03.081
http://cds.cern.ch/record/2161980
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author Macchiolo, Anna
Nisius, Richard
Savic, Natascha
Terzo, Stefano
author_facet Macchiolo, Anna
Nisius, Richard
Savic, Natascha
Terzo, Stefano
author_sort Macchiolo, Anna
collection CERN
description Thin planar pixel modules are promising candidates to instrument the inner layers of the new ATLAS pixel detector for HL-LHC, thanks to the reduced contribution to the material budget and their high charge collection efficiency after irradiation. 100–200 μm thick sensors, interconnected to FE-I4 read-out chips, have been characterized with radioactive sources and beam tests at the CERN-SPS and DESY. The results of these measurements are reported for devices before and after irradiation up to a fluence of 14×1015 neq/cm2 . The charge collection and tracking efficiency of the different sensor thicknesses are compared. The outlook for future planar pixel sensor production is discussed, with a focus on sensor design with the pixel pitches (50×50 and 25×100 μm 2 ) foreseen for the RD53 Collaboration read-out chip in 65 nm CMOS technology. An optimization of the biasing structures in the pixel cells is required to avoid the hit efficiency loss presently observed in the punch-through region after irradiation. For this purpose the performance of different layouts have been compared in FE-I4 compatible sensors at various fluence levels by using beam test data. Highly segmented sensors will represent a challenge for the tracking in the forward region of the pixel system at HL-LHC. In order to reproduce the performance of 50×50 μm 2 pixels at high pseudo-rapidity values, FE-I4 compatible planar pixel sensors have been studied before and after irradiation in beam tests at high incidence angle (80°) with respect to the short pixel direction. Results on cluster shapes, charge collection and hit efficiency will be shown.
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spelling cern-21619802021-09-17T02:55:52Z doi:10.1016/j.nima.2016.03.081 http://cds.cern.ch/record/2161980 eng Macchiolo, Anna Nisius, Richard Savic, Natascha Terzo, Stefano Development of n-in-p pixel modules for the ATLAS Upgrade at HL-LHC physics.ins-det 7: Advanced hybrid pixel detectors Detectors and Experimental Techniques Thin planar pixel modules are promising candidates to instrument the inner layers of the new ATLAS pixel detector for HL-LHC, thanks to the reduced contribution to the material budget and their high charge collection efficiency after irradiation. 100–200 μm thick sensors, interconnected to FE-I4 read-out chips, have been characterized with radioactive sources and beam tests at the CERN-SPS and DESY. The results of these measurements are reported for devices before and after irradiation up to a fluence of 14×1015 neq/cm2 . The charge collection and tracking efficiency of the different sensor thicknesses are compared. The outlook for future planar pixel sensor production is discussed, with a focus on sensor design with the pixel pitches (50×50 and 25×100 μm 2 ) foreseen for the RD53 Collaboration read-out chip in 65 nm CMOS technology. An optimization of the biasing structures in the pixel cells is required to avoid the hit efficiency loss presently observed in the punch-through region after irradiation. For this purpose the performance of different layouts have been compared in FE-I4 compatible sensors at various fluence levels by using beam test data. Highly segmented sensors will represent a challenge for the tracking in the forward region of the pixel system at HL-LHC. In order to reproduce the performance of 50×50 μm 2 pixels at high pseudo-rapidity values, FE-I4 compatible planar pixel sensors have been studied before and after irradiation in beam tests at high incidence angle (80°) with respect to the short pixel direction. Results on cluster shapes, charge collection and hit efficiency will be shown. Thin planar pixel modules are promising candidates to instrument the inner layers of the new ATLAS pixel detector for HL-LHC, thanks to the reduced contribution to the material budget and their high charge collection efficiency after irradiation. 100-200 $\mu$m thick sensors, interconnected to FE-I4 read-out chips, have been characterized with radioactive sources and beam tests at the CERN-SPS and DESY. The results of these measurements are reported for devices before and after irradiation up to a fluence of $14\times10^{15}$ n$_{eq}$/cm$^2$. The charge collection and tracking efficiency of the different sensor thicknesses are compared. The outlook for future planar pixel sensor production is discussed, with a focus on sensor design with the pixel pitches (50x50 and 25x100 $\mu$m$^2$) foreseen for the RD53 Collaboration read-out chip in 65 nm CMOS technology. An optimization of the biasing structures in the pixel cells is required to avoid the hit efficiency loss presently observed in the punch-through region after irradiation. For this purpose the performance of different layouts have been compared in FE-I4 compatible sensors at various fluence levels by using beam test data. Highly segmented sensors will represent a challenge for the tracking in the forward region of the pixel system at HL-LHC. In order to reproduce the performance of 50x50 $\mu$m$^2$ pixels at high pseudo-rapidity values, FE-I4 compatible planar pixel sensors have been studied before and after irradiation in beam tests at high incidence angle (80$^\circ$) with respect to the short pixel direction. Results on cluster shapes, charge collection and hit efficiency will be shown. info:eu-repo/grantAgreement/EC/FP7/654168 info:eu-repo/semantics/openAccess Education Level info:eu-repo/semantics/article http://cds.cern.ch/record/2161980 Nucl. Instrum. Methods Phys. Res., A Nucl. Instrum. Methods Phys. Res., A, (2016) pp. 111-115 2016-06-16
spellingShingle physics.ins-det
7: Advanced hybrid pixel detectors
Detectors and Experimental Techniques
Macchiolo, Anna
Nisius, Richard
Savic, Natascha
Terzo, Stefano
Development of n-in-p pixel modules for the ATLAS Upgrade at HL-LHC
title Development of n-in-p pixel modules for the ATLAS Upgrade at HL-LHC
title_full Development of n-in-p pixel modules for the ATLAS Upgrade at HL-LHC
title_fullStr Development of n-in-p pixel modules for the ATLAS Upgrade at HL-LHC
title_full_unstemmed Development of n-in-p pixel modules for the ATLAS Upgrade at HL-LHC
title_short Development of n-in-p pixel modules for the ATLAS Upgrade at HL-LHC
title_sort development of n-in-p pixel modules for the atlas upgrade at hl-lhc
topic physics.ins-det
7: Advanced hybrid pixel detectors
Detectors and Experimental Techniques
url https://dx.doi.org/10.1016/j.nima.2016.03.081
http://cds.cern.ch/record/2161980
http://cds.cern.ch/record/2161980
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