The design and performance of IceCube DeepCore

► IceCube DeepCore lowers the neutrino energy threshold in IceCube to as low as 10GeV. ► The surrounding IceCube detector is an active veto against cosmic ray muons. ► IceCube DeepCore uses higher quantum efficiency PMTs in very clear ice. ► IceCube DeepCore has a module density 5× higher than the r...

Ausführliche Beschreibung

Gespeichert in:
Bibliographische Detailangaben
Veröffentlicht in:Astroparticle physics 2012-05, Vol.35 (10), p.615-624
Hauptverfasser: Abbasi, R., Ackermann, M., Adams, J., Bai, X., Barwick, S.W., Bay, R., Becker, J.K., Benabderrahmane, M.L., Berdermann, J., Bernardini, E., Bertrand, D., Besson, D.Z., Bindig, D., Bissok, M., Blaufuss, E., Blumenthal, J., Bohm, C., Bose, D., Böser, S., Botner, O., Brown, A.M., Chirkin, D., Cohen, S., D’Agostino, M.V., Daughhetee, J., Díaz-Vélez, J.C., Ellsworth, R.W., Engdegård, O., Evenson, P.A., Fazely, A.R., Feintzeig, J., Finley, C., Fox, B.D., Franckowiak, A., Gallagher, J., Gladstone, L., Glüsenkamp, T., Goldschmidt, A., Goodman, J.A., Ha, C., Halzen, F., Han, K., Heinen, D., Hickford, S., Hill, G.C., Hoffman, K.D., Hülß, J.-P., Ishihara, A., Japaridze, G.S., Kampert, K.-H., Karg, T., Kiryluk, J., Köhne, J.-H., Kowarik, T., Kuwabara, T., Labare, M., Larson, M.J., Mase, K., Meagher, K., Miarecki, S., Milke, N., Montaruli, T., Morse, R., Odrowski, S., Olivas, A., Panknin, S., Paul, L., Pérez de los Heros, C., Pieloth, D., Posselt, J., Resconi, E., Rodrigues, J.P., Ruhe, T., Rutledge, D., Ryckbosch, D., Schatto, K., Schmidt, T., Schönwald, A., Schulz, O., Schunck, M., Sestayo, Y., Stokstad, R.G., Strahler, E.A., Stüer, M., Taavola, H., Taboada, I., Ter-Antonyan, S., Toale, P.A., Tosi, D., van Eijndhoven, N., Van Overloop, A., Waldenmaier, T., Weaver, Ch, Westerhoff, S., Williams, D.R., Wissing, H., Wolf, M., Xu, D.L., Yanez, J.P., Zarzhitsky, P.
Format: Artikel
Sprache:eng
Schlagworte:
Online-Zugang:Volltext
Tags: Tag hinzufügen
Keine Tags, Fügen Sie den ersten Tag hinzu!
Beschreibung
Zusammenfassung:► IceCube DeepCore lowers the neutrino energy threshold in IceCube to as low as 10GeV. ► The surrounding IceCube detector is an active veto against cosmic ray muons. ► IceCube DeepCore uses higher quantum efficiency PMTs in very clear ice. ► IceCube DeepCore has a module density 5× higher than the rest of IceCube. The IceCube neutrino observatory in operation at the South Pole, Antarctica, comprises three distinct components: a large buried array for ultrahigh energy neutrino detection, a surface air shower array, and a new buried component called DeepCore. DeepCore was designed to lower the IceCube neutrino energy threshold by over an order of magnitude, to energies as low as about 10GeV. DeepCore is situated primarily 2100m below the surface of the icecap at the South Pole, at the bottom center of the existing IceCube array, and began taking physics data in May 2010. Its location takes advantage of the exceptionally clear ice at those depths and allows it to use the surrounding IceCube detector as a highly efficient active veto against the principal background of downward-going muons produced in cosmic-ray air showers. DeepCore has a module density roughly five times higher than that of the standard IceCube array, and uses photomultiplier tubes with a new photocathode featuring a quantum efficiency about 35% higher than standard IceCube PMTs. Taken together, these features of DeepCore will increase IceCube’s sensitivity to neutrinos from WIMP dark matter annihilations, atmospheric neutrino oscillations, galactic supernova neutrinos, and point sources of neutrinos in the northern and southern skies. In this paper we describe the design and initial performance of DeepCore.
ISSN:0927-6505
1873-2852
1873-2852
DOI:10.1016/j.astropartphys.2012.01.004