• Medientyp: Bericht; Preprint; E-Book
  • Titel: TAO Conceptual Design Report: A Precision Measurement of the Reactor Antineutrino Spectrum with Sub-percent Energy Resolution
  • Beteiligte: Abusleme, Angel [VerfasserIn]; Adam, Thomas [VerfasserIn]; Anfimov, Nikolay [VerfasserIn]; Fan, Donghua [VerfasserIn]; Fan, Lei [VerfasserIn]; Fang, Can [VerfasserIn]; Fang, Jian [VerfasserIn]; Fatkina, Anna [VerfasserIn]; Fedoseev, Dmitry [VerfasserIn]; Fekete, Vladko [VerfasserIn]; Feng, Li-Cheng [VerfasserIn]; Feng, Qichun [VerfasserIn]; Ford, Richard [VerfasserIn]; Antonelli, Vito [VerfasserIn]; Formozov, Andrey [VerfasserIn]; Fournier, Amélie [VerfasserIn]; Gan, Haonan [VerfasserIn]; Gao, Feng [VerfasserIn]; Garfagnini, Alberto [VerfasserIn]; Göttel, Alexandre [VerfasserIn]; Genster, Christoph [VerfasserIn]; Giammarchi, Marco [VerfasserIn]; Giaz, Agnese [VerfasserIn]; Giudice, Nunzio [VerfasserIn]; [...]
  • Erschienen: Forschungszentrum Jülich: JuSER (Juelich Shared Electronic Resources), 2020
  • Sprache: Englisch
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  • Beschreibung: The Taishan Antineutrino Observatory (TAO, also known as JUNO-TAO) is a satellite experiment of the Jiangmen Underground Neutrino Observatory (JUNO). A ton-level liquid scintillator detector will be placed at about 30 m from a core of the Taishan Nuclear Power Plant. The reactor antineutrino spectrum will be measured with sub-percent energy resolution, to provide a reference spectrum for future reactor neutrino experiments, and to provide a benchmark measurement to test nuclear databases. A spherical acrylic vessel containing 2.8 ton gadolinium-doped liquid scintillator will be viewed by 10 m$^2$ Silicon Photomultipliers (SiPMs) of >50% photon detection efficiency with almost full coverage. The photoelectron yield is about 4500 per MeV, an order higher than any existing large-scale liquid scintillator detectors. The detector operates at -50 $^{\circ}$C to lower the dark noise of SiPMs to an acceptable level. The detector will measure about 2000 reactor antineutrinos per day, and is designed to be well shielded from cosmogenic backgrounds and ambient radioactivities to have about 10% background-to-signal ratio. The experiment is expected to start operation in 2022.
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