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The Pixel Detector of the ATLAS experiment has shown excellent performance during the whole Run-1 of LHC. Taking advantage of the long shutdown, the detector was extracted from the experiment and brought to surface, to equip it with new…

Instrumentation and Detectors · Physics 2015-12-23 Yosuke Takubo

Run-2 of the Large Hadron Collider (LHC) will provide new challenges to track and vertex reconstruction with higher energies, denser jets and higher rates. Therefore the ATLAS experiment has constructed the first 4-layer Pixel Detector in…

Instrumentation and Detectors · Physics 2016-08-30 Karolos Potamianos

The ATLAS Detector will be upgraded for higher intensity running of the LHC. A long shutdown is envisioned in 2016 prior to the so-called Phase I running. A new pixel layer, called the Insertable B-Layer (IBL), will be inserted at a radius…

Instrumentation and Detectors · Physics 2019-08-16 Fabian Hügging

The upgrade for ATLAS detector will undergo different phase towards super-LHC. The first upgrade for the Pixel detector will consist of the construction of a new pixel layer which will be installed during the first shutdown of the LHC…

Instrumentation and Detectors · Physics 2015-05-27 A. La Rosa

With the LHC collecting data at 7 TeV, plans are already advancing for a series of upgrades leading eventually to about five times the LHC design luminosity some 10 years from now in the High Luminosity LHC (HL-LHC) project. The upgrades…

Instrumentation and Detectors · Physics 2019-08-13 Alessandro La Rosa

The ATLAS experiment pixel detector upgrade plans are focused on development of new technology, including the FE-I4 readout integrated circuit. The first upgrade project to make use of this new technology is an "Insertable B-Layer" (IBL)…

Instrumentation and Detectors · Physics 2011-09-23 M. Garcia-Sciveres , ATLAS Collaboration

During the shutdown of the CERN Large Hadron Collider in 2013-2014, an additional pixel layer was installed between the existing Pixel detector of the ATLAS experiment and a new, smaller radius beam pipe. The motivation for this new pixel…

Instrumentation and Detectors · Physics 2018-06-07 B. Abbott , J. Albert , F. Alberti , M. Alex , G. Alimonti , S. Alkire , P. Allport , S. Altenheiner , L. Ancu , E. Anderssen , A. Andreani , A. Andreazza , B. Axen , J. Arguin , M. Backhaus , G. Balbi , J. Ballansat , M. Barbero , G. Barbier , A. Bassalat , R. Bates , P. Baudin , M. Battaglia , T. Beau , R. Beccherle , A. Bell , M. Benoit , A. Bermgan , C. Bertsche , D. Bertsche , J. Bilbao de Mendizabal , F. Bindi , M. Bomben , M. Borri , C. Bortolin , N. Bousson , R. Boyd , P. Breugnon , G. Bruni , J. Brossamer , M. Bruschi , P. Buchholz , E. Budun , C. Buttar , F. Cadoux , G. Calderini , L. Caminada , M. Capeans , R. Carney , G. Casse , A. Catinaccio , M. Cavalli-Sforza , M. Červ , A. Cervelli , C. Chau , J. Chauveau , S. Chen , M. Chu , M. Ciapetti , V. Cindro , M. Citterio , A. Clark , M. Cobal , S. Coelli , J. Collot , O. Crespo-Lopez , G. Dalla Betta , C. Daly , G. D'Amen , N. Dann , V. Dao , G. Darbo , C. DaVia , P. David , S. Debieux , P. Delebecque , F. De Lorenzi , R. de Oliveira , K. Dette , W. Dietsche , B. Di Girolamo , N. Dinu , F. Dittus , D. Diyakov , F. Djama , D. Dobos , P. Dondero , K. Doonan , J. Dopke , O. Dorholt , S. Dube , D. Dzahini , K. Egorov , O. Ehrmann , K. Einsweiler , S. Elles , M. Elsing , L. Eraud , A. Ereditato , A. Eyring , D. Falchieri , A. Falou , C. Fausten , A. Favareto , Y. Favre , S. Feigl , S. Fernandez Perez , D. Ferrere , J. Fleury , T. Flick , D. Forshaw , D. Fougeron , L. Franconi , A. Gabrielli , R. Gaglione , C. Gallrapp , K. Gan , M. Garcia-Sciveres , G. Gariano , T. Gastaldi , I. Gavrilenko , A. Gaudiello , N. Geffroy , C. Gemme , F. Gensolen , M. George , P. Ghislain , N. Giangiacomi , S. Gibson , M. Giordani , D. Giugni , H. Gjersdal , K. Glitza , D. Gnani , J. Godlewski , L. Gonella , S. Gonzalez-Sevilla , I. Gorelov , A. Gorišek , C. Gössling , S. Grancagnolo , H. Gray , I. Gregor , P. Grenier , S. Grinstein , A. Gris , V. Gromov , D. Grondin , J. Grosse-Knetter , F. Guescini , E. Guido , P. Gutierrez , G. Hallewell , N. Hartman , S. Hauck , J. Hasi , A. Hasib , F. Hegner , S. Heidbrink , T. Heim , B. Heinemann , T. Hemperek , N. Hessey , M. Hetmánek , R. Hinman , M. Hoeferkamp , T. Holmes , J. Hostachy , S. Hsu , F. Hügging , C. Husi , G. Iacobucci , I. Ibragimov , J. Idarraga , Y. Ikegami , T. Ince , R. Ishmukhametov , J. M. Izen , Z. Janoška , J. Janssen , L. Jansen , L. Jeanty , F. Jensen , J. Jentzsch , S. Jezequel , J. Joseph , H. Kagan , M. Kagan , M. Karagounis , R. Kass , A. Kastanas , C. Kenney , S. Kersten , P. Kind , M. Klein , R. Klingenberg , R. Kluit , M. Kocian , E. Koffeman , O. Korchak , I. Korolkov , I. Kostyukhina-Visoven , S. Kovalenko , M. Kretz , N. Krieger , H. Krüger , A. Kruth , A. Kugel , W. Kuykendall , A. La Rosa , C. Lai , K. Lantzsch , C. Lapoire , D. Laporte , T. Lari , S. Latorre , M. Leyton , B. Lindquist , K. Looper , I. Lopez , A. Lounis , Y. Lu , H. Lubatti , S. Maeland , A. Maier , U. Mallik , F. Manca , B. Mandelli , I. Mandić , D. Marchand , G. Marchiori , M. Marx , N. Massol , P. Mättig , J. Mayer , G. Mc Goldrick , A. Mekkaoui , M. Menouni , J. Menu , C. Meroni , J. Mesa , S. Michal , S. Miglioranzi , M. Mikuž , A. Miucci , K. Mochizuki , M. Monti , J. Moore , P. Morettini , A. Morley , J. Moss , D. Muenstermann , P. Murray , K. Nakamura , C. Nellist , D. Nelson , M. Nessi , R. Nisius , M. Nordberg , F. Nuiry , T. Obermann , W. Ockenfels , H. Oide , M. Oriunno , F. Ould-Saada , C. Padilla , P. Pangaud , S. Parker , G. Pelleriti , H. Pernegger , G. Piacquadio , A. Picazio , D. Pohl , A. Polini , X. Pons , J. Popule , X. Portell Bueso , K. Potamianos , M. Povoli , D. Puldon , Y. Pylypchenko , A. Quadt , B. Quayle , F. Rarbi , F. Ragusa , T. Rambure , E. Richards , C. Riegel , B. Ristic , F. Rivière , F. Rizatdinova , O. Røhne , C. Rossi , L. Rossi , A. Rovani , A. Rozanov , I. Rubinskiy , M. Rudolph , A. Rummler , E. Ruscino , F. Sabatini , D. Salek , A. Salzburger , H. Sandaker , M. Sannino , B. Sanny , T. Scanlon , J. Schipper , U. Schmidt , B. Schneider , A. Schorlemmer , N. Schroer , P. Schwemling , A. Sciuccati , S. Seidel , A. Seiden , P. Šícho , P. Skubic , M. Sloboda , D. Smith , M. Smith , A. Sood , E. Spencer , M. Stramaglia , M. Strauss , S. Stucci , B. Stugu , J. Stupak , N. Styles , D. Su , Y. Takubo , J. Tassan , P. Teng , A. Teixeira , S. Terzo , X. Therry , T. Todorov , M. Tomášek , K. Toms , R. Travaglini , W. Trischuk , C. Troncon , G. Troska , S. Tsiskaridze , I. Tsurin , D. Tsybychev , Y. Unno , L. Vacavant , B. Verlaat , E. Vigeolas , M. Vogt , V. Vrba , R. Vuillermet , W. Wagner , W. Walkowiak , R. Wang , S. Watts , M. Weber , M. Weber , J. Weingarten , S. Welch , S. Wenig , M. Wensing , N. Wermes , T. Wittig , M. Wittgen , T. Yildizkaya , Y. Yang , W. Yao , Y. Yi , A. Zaman , R. Zaidan , C. Zeitnitz , M. Ziolkowski , V. Zivkovic , A. Zoccoli , L. Zwalinski

The innermost part of the ATLAS (A Toroidal LHC ApparatuS) experiment at the LHC (Large Hadron Collider) will be a pixel detector, which is presently under construction. Once installed into the experimental area, access will be extremely…

The ATLAS Insertable B-Layer (IBL) is the innermost layer of pixel detectors, and was installed in May 2014 at a radius of 3.3 cm from the beam axis, between the existing Pixel detector and a new smaller radius beam-pipe. The new detector,…

Instrumentation and Detectors · Physics 2017-01-16 Alessandro La Rosa

Pixel sensors in 3D technology equip the outer ends of the staves of the Insertable B Layer (IBL), the innermost layer of the ATLAS Pixel Detector, which was installed before the start of LHC Run 2 in 2015. 3D pixel sensors are expected to…

Instrumentation and Detectors · Physics 2024-12-18 ATLAS Collaboration

A demonstrator for each slice of the ATLAS pixel detector was built to replicate the real detector and provide early solutions for operating and maintaining its components. This system-level testing of the all-silicon Inner Tracker (ITk)…

High Energy Physics - Experiment · Physics 2025-01-15 Yahya Khwaira

The ATLAS inner detector comprises three different sub-detectors: the pixel detector, the silicon strip tracker, and the transition-radiation drift-tube tracker. The Insertable $B$-Layer, a new innermost pixel layer, was installed during…

High Energy Physics - Experiment · Physics 2017-12-08 ATLAS Collaboration

The ATLAS Insertable B-Layer (IBL) collaboration plans to insert a fourth pixel layer inside the present Pixel Detector to recover from eventual failures in the current pixel system, especially the b-layer. Additionally the IBL will ensure…

Instrumentation and Detectors · Physics 2012-02-17 Malte Backhaus

In the first LHC running period the CMS-pixel detector had to face various operational challenges and had to adapt to the rapidly changing beam conditions. In order to maximize the physics potential and the quality of the data, online and…

Instrumentation and Detectors · Physics 2015-06-11 János Karancsi

Results on beam tests of 3D silicon pixel sensors aimed at the ATLAS Insertable-B-Layer and High Luminosity LHC (HL-LHC)) upgrades are presented. Measurements include charge collection, tracking efficiency and charge sharing between pixel…

The ATLAS pixel detector is the innermost detector of the ATLAS experiment at the Large Hadron Collider at CERN. With approximately 80 million readout channels, the ATLAS silicon pixel detector is a high-acceptance, high-resolution,…

Instrumentation and Detectors · Physics 2019-08-13 E. Galyaev

The innermost part of the tracking detector of the ATLAS experiment consists mainly of planar n$^+$-in-n silicon pixel sensors. During the phase-0 upgrade, the Insertable B-Layer (IBL) was installed closest to the beam pipe. Its pixels are…

Instrumentation and Detectors · Physics 2018-08-21 A. Gisen , S. Altenheiner , C. Gößling , M. Grothe , R. Klingenberg , K. Kröninger , J. Lönker , M. Weers , T. Wittig , F. Wizemann

The ATLAS Pixel Detector is the innermost layer of the ATLAS tracking system and will contribute significantly to the ATLAS track and vertex reconstruction. The detector consists of identical sensor-chip-hybrid modules, arranged in three…

Instrumentation and Detectors · Physics 2014-11-18 J. Grosse-Knetter

3D silicon sensors, where plasma micro-machining is used to etch deep narrow apertures in the silicon substrate to form electrodes of PIN junctions, represent possible solutions for inner pixel layers of the tracking detectors in high…

Instrumentation and Detectors · Physics 2015-05-20 Giovanni Darbo

The Insertable B-layer (IBL) is a fourth pixel layer that will be added inside the existing ATLAS pixel detector during the long LHC shutdown of 2013 and 2014. The new four layer pixel system will ensure excellent tracking, vertexing and…

Instrumentation and Detectors · Physics 2013-04-17 Malte Backhaus
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