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Featured researches published by K. Nguyen.


Journal of Instrumentation | 2013

ArDM: first results from underground commissioning

A. Badertscher; F. Bay; N. Bourgeois; C. Cantini; A. Curioni; M. Daniel; U Degunda; S. Di Luise; L. Epprecht; A. Gendotti; S. Horikawa; L. Knecht; D Lussi; G. Maire; B. Montes; S. Murphy; G. Natterer; K. Nikolics; K. Nguyen; L. Periale; S. Ravat; F. Resnati; L. Romero; A. Rubbia; R. Santorelli; F. Sergiampietri; D. Sgalaberna; T. Viant; S. Wu

The Argon Dark Matter experiment is a ton-scale double phase argon Time Projection Chamber designed for direct Dark Matter searches. It combines the detection of scintillation light together with the ionisation charge in order to discriminate the background (electron recoils) from the WIMP signals (nuclear recoils). After a successful operation on surface at CERN, the detector was recently installed in the underground Laboratorio Subterr?neo de Canfranc, and the commissioning phase is ongoing. We describe the status of the installation and present first results from data collected underground with the detector filled with gas argon at room temperature.


Journal of Instrumentation | 2013

First operation and performance of a 200 lt double phase LAr LEM-TPC with a 40 × 76 cm2 readout

A. Badertscher; A. Curioni; U Degunda; L. Epprecht; A. Gendotti; S. Horikawa; L. Knecht; D Lussi; G. Natterer; K. Nguyen; F. Resnati; A. Rubbia; T. Viant

In this paper we describe the design, construction, and operation of a first large area double-phase liquid argon Large Electron Multiplier Time Projection Chamber (LAr LEM-TPC). The detector has a maximum drift length of 60 cm and the readout consists of a 40 × 76 cm2 LEM and 2D projective anode to multiply and collect drifting charges. Scintillation light is detected by means of cryogenic PMTs positioned below the cathode. To record both charge and light signals, we have developed a compact acquisition system, which is scalable up to ton-scale detectors with thousands of charge readout channels. The acquisition system, as well as the design and the performance of custom-made charge sensitive preamplifiers, are described. The complete experimental setup has been operated for a first time during a period of four weeks at CERN in the cryostat of the ArDM experiment, which was equipped with liquid and gas argon purification systems. The detector, exposed to cosmic rays, recorded events with a single-channel signal-to-noise ratio in excess of 30 for minimum ionising particles. Cosmic muon tracks and their δ-rays were used to assess the performance of the detector, and to estimate the liquid argon purity and the gain at different amplification fields.In this paper we describe the design, construction, and operation of a first large area double-phase liquid argon Large Electron Multiplier Time Projection Chamber (LAr LEM-TPC). The detector has a maximum drift length of 60 cm and the readout consists of a 40×76 cm2 LEM and 2D projective anode to multiply and collect drifting charges. Scintillation light is detected by means of cryogenic PMTs positioned below the cathode. To record both charge and light signals, we have developed a compact acquisition system, which is scalable up to ton-scale detectors with thousands of charge readout channels. The acquisition system, as well as the design and the performance of custom-made charge sensitive preamplifiers, are described. The complete experimental setup has been operated for a first time during a period of four weeks at CERN in the cryostat of the ArDM experiment, which was equipped with liquid and gas argon purification systems. The detector, exposed to cosmic rays, recorded events with a single-channel signal-to-noise ratio in excess of 30 for minimum ionising particles. Cosmic muon tracks and their δ -rays were used to assess the performance of the detector, and to estimate the liquid argon purity and the gain at different amplification fields.


Journal of Cosmology and Astroparticle Physics | 2017

Commissioning of the ArDM experiment at the Canfranc underground laboratory: first steps towards a tonne-scale liquid argon time projection chamber for Dark Matter searches

J. Calvo; C. Cantini; P. Crivelli; M. Daniel; S. Di Luise; A. Gendotti; S. Horikawa; B. Montes; W. Mu; S. Murphy; G. Natterer; K. Nguyen; L. Periale; Y. Quan; B. Radics; C. Regenfus; L. Romero; A. Rubbia; R. Santorelli; F. Sergiampietri; T. Viant; S. Wu

The Argon Dark Matter (ArDM) experiment consists of a liquid argon (LAr) time projection chamber (TPC) sensitive to nuclear recoils resulting from scattering of hypothetical Weakly Interacting Massive Particles (WIMPs) on argon targets. With an active target of 850 kg, ArDM represents an important milestone in the quest for Dark Matter with LAr. We present the experimental apparatus currently installed underground at the Laboratorio Subterraneo de Canfranc (LSC), Spain. We show first data recorded during a single-phase commissioning run in 2015 (ArDM Run I), which overall confirm the good and stable performance of the ton-scale LAr detector.The Argon Dark Matter (ArDM) experiment consists of a liquid argon (LAr) time projection chamber (TPC) sensitive to nuclear recoils, resulting from scattering of hypothetical Weakly Interacting Massive Particles (WIMPs) on argon targets. With an active target mass of 850 kg ArDM represents an important milestone towards developments for large LAr Dark Matter detectors. Here we present the experimental apparatus currently installed underground at the Laboratorio Subterraneo de Canfranc (LSC), Spain. We show data on gaseous or liquid argon targets recorded in 2015 during the commissioning of ArDM in single phase at zero E-field (ArDM Run I). The data confirms the overall good and stable performance of the ArDM tonne-scale LAr detector.


Journal of Instrumentation | 2012

First operation and drift field performance of a large area double phase LAr Electron Multiplier Time Projection Chamber with an immersed Greinacher high-voltage multiplier

A. Badertscher; A. Curioni; U Degunda; L. Epprecht; A. Gendotti; S. Horikawa; L. Knecht; D Lussi; A. Marchionni; G. Natterer; K. Nguyen; F. Resnati; A. Rubbia; T. Viant

We have operated a liquid-argon large-electron-multiplier time-projection chamber (LAr LEM-TPC) with a large active area of 76 × 40 cm2 and a drift length of 60 cm. This setup represents the largest chamber ever achieved with this novel detector concept. The chamber is equipped with an immersed built-in cryogenic Greinacher multi-stage high-voltage (HV) multiplier, which, when subjected to an external AC HV of ~ 1 kVpp, statically charges up to a voltage a factor of ~ 30 higher inside the LAr vessel, creating a uniform drift field of ~ 0.5 kV/cm over the full drift length. This large LAr LEM-TPC was brought into successful operation in the double-phase (liquid-vapor) operation mode and tested during a period of ~ 1 month, recording impressive three-dimensional images of very high-quality from cosmic particles traversing or interacting in the sensitive volume. The double phase readout and HV systems achieved stable operation in cryogenic conditions demonstrating their good characteristics, which particularly suit applications for next-generation giant-scale LAr-TPCs.


arXiv: Instrumentation and Detectors | 2013

Status of the ArDM Experiment: First results from gaseous argon operation in deep underground environment

A. Badertscher; B. Montes; G. Natterer; G. Maire; K. Nikolics; D Lussi; S DiLuise; D. Sgalaberna; A. Rubbia; R. Santorelli; L. Epprecht; F. Bay; S. Wu; U Degunda; S. Horikawa; T. Viant; L. Knecht; F. Resnati; S. Ravat; F. Sergiampietri; N. Bourgeois; L. Periale; C. Cantini; L. Romero; S. Murphy; M. Daniel; A. Gendotti; K. Nguyen


arXiv: Instrumentation and Detectors | 2015

Status of ArDM-1t: First observations from operation with a full ton-scale liquid argon target

J. Calvo; C. Cantini; M. Daniel; U Degunda; S. Di Luise; L. Epprecht; A. Gendotti; S. Horikawa; L. Knecht; B. Montes; W. Mu; M. Munoz; S. Murphy; G. Natterer; K. Nguyen; K. Nikolics; L. Periale; C. Regenfus; L. Romero; A. Rubbia; R. Santorelli; F. Sergiampietri; D. Sgalaberna; T. Viant; S. Wu


Astroparticle Physics | 2018

Measurement of the attenuation length of argon scintillation light in the ArDM LAr TPC

J. Calvo; C. Cantini; P. Crivelli; M. Daniel; S. Di Luise; A. Gendotti; S. Horikawa; L. Molina-Bueno; Bárbara Montes; W. Mu; S. Murphy; G. Natterer; K. Nguyen; L. Periale; Y. Quan; B. Radics; C. Regenfus; L. Romero; A. Rubbia; R. Santorelli; F. Sergiampietri; T. Viant; S. Wu


Archive | 2017

Backgrounds and pulse shape discrimination in the ArDM liquid argon TPC

J. Calvo; C. Cantini; P. Crivelli; M. Daniel; S. Di Luise; A. Gendotti; S. Horikawa; L. Molina-Bueno; Bárbara Montes; W. Mu; S. Murphy; G. Natterer; K. Nguyen; L. Periale; Y. Quan; B. Radics; C. Regenfus; L. Romero; A. Rubbia; R. Santorelli; F. Sergiampietri; T. Viant; S. Wu


arXiv: Instrumentation and Detectors | 2012

Performance of a 250L liquid Argon TPC for sub-GeV charged particle identification

O. Araoka; A. Badertscher; A. Curioni; S. Di Luise; U Degunda; L. Epprecht; L. Esposito; A. Gendotti; T. Hasegawa; S. Horikawa; K. Kasami; N. Kimura; L. Knecht; T. Kobayashi; C. Lazzaro; D Lussi; M. Maki; A. Marchionni; T. Maruyama; A. Meregaglia; T. Mitani; Y. Nagasaka; J. Naganoma; H. Naito; S. Narita; G. Natterer; K. Nguyen; K. Nishikawa; A. Okamoto; H. Okamoto

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