Large-area lithium-drifted silicon (Si(Li)) detectors, operable 150°C above liquid nitrogen temperature, have been developed for the General Antiparticle Spectrometer (GAPS) balloon mission and will form the first such system to operate in space. These 10 cm-diameter, 2.5 mm-thick multi-strip detectors have been verified in the lab to provide < 4 keV FWHM energy resolution for X-rays as well as tracking capability for charged particles, while operating in conditions (~-40C and ~1 Pa) achievable on a long-duration balloon mission with a large detector payload. These characteristics enable the GAPS silicon tracker system to identify cosmic antinuclei via a novel technique based on exotic atom formation, de-excitation, and annihilation. Production and large-scale calibration of ~1000 detectors has begun for the first GAPS flight, scheduled for late 2021. The detectors developed for GAPS may also have other applications, for example in heavy nuclei identification.

(2019). Large-area Si(Li) Detectors for X-ray Spectrometry and Particle Tracking for the GAPS Experiment . Retrieved from http://hdl.handle.net/10446/168522

Large-area Si(Li) Detectors for X-ray Spectrometry and Particle Tracking for the GAPS Experiment

Manghisoni, Massimo;Re, Valerio;Riceputi, Elisa;
2019-01-01

Abstract

Large-area lithium-drifted silicon (Si(Li)) detectors, operable 150°C above liquid nitrogen temperature, have been developed for the General Antiparticle Spectrometer (GAPS) balloon mission and will form the first such system to operate in space. These 10 cm-diameter, 2.5 mm-thick multi-strip detectors have been verified in the lab to provide < 4 keV FWHM energy resolution for X-rays as well as tracking capability for charged particles, while operating in conditions (~-40C and ~1 Pa) achievable on a long-duration balloon mission with a large detector payload. These characteristics enable the GAPS silicon tracker system to identify cosmic antinuclei via a novel technique based on exotic atom formation, de-excitation, and annihilation. Production and large-scale calibration of ~1000 detectors has begun for the first GAPS flight, scheduled for late 2021. The detectors developed for GAPS may also have other applications, for example in heavy nuclei identification.
2019
Inglese
2019 IEEE Nuclear Science Symposium and Medical Imaging Conference (NSS/MIC)
978-1-7281-4164-0
1
3
online
United States
Piscataway
Institute of Electrical and Electronics Engineers Inc.
esperti anonimi
NSS/MIC 2019: IEEE Nuclear Science Symposium and Medical Imaging Conference, Manchester, UK, 26 October - 2 November 2019
Manchester (UK)
26 October - 2 November 2019
IEEE
internazionale
contributo
Settore ING-INF/01 - Elettronica
Dark matter; silicon sensors; microelectronics
indice consultabile alla pagina https://ieeexplore.ieee.org/xpl/conhome/9039702/proceeding
info:eu-repo/semantics/conferenceObject
18
Rogers, Field; Xiao, Mengjiao; Perez, Kerstin; Boggs, Steven; Erjavec, Tyler; Fabris, Lorenzo; Fuke, Hideyuki; Hailey, Charles J.; Kozai, Masayoshi; L...espandi
1.4 Contributi in atti di convegno - Contributions in conference proceedings::1.4.01 Contributi in atti di convegno - Conference presentations
reserved
Non definito
273
(2019). Large-area Si(Li) Detectors for X-ray Spectrometry and Particle Tracking for the GAPS Experiment . Retrieved from http://hdl.handle.net/10446/168522
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