학술논문

Search for steady point-like sources in the astrophysical muon neutrino flux with 8 years of IceCube data
Document Type
article
Author
IceCube CollaborationM. G. AartsenM. AckermannJ. AdamsJ. A. AguilarM. AhlersM. AhrensD. AltmannK. AndeenT. AndersonI. AnsseauG. AntonC. ArgüellesJ. AuffenbergS. AxaniP. BackesH. BagherpourX. BaiA. BarbanoJ. P. BarronS. W. BarwickV. BaumR. BayJ. J. BeattyJ. Becker TjusK.-H. BeckerS. BenZviD. BerleyE. BernardiniD. Z. BessonG. BinderD. BindigE. BlaufussS. BlotC. BohmM. BörnerF. BosS. BöserO. BotnerE. BourbeauJ. BourbeauF. BradascioJ. BraunH.-P. BretzS. BronJ. Brostean-KaiserA. BurgmanR. S. BusseT. CarverC. ChenE. CheungD. ChirkinK. ClarkL. ClassenG. H. CollinJ. M. ConradP. CoppinP. CorreaD. F. CowenR. CrossP. DaveM. DayJ. P. A. M. de AndréC. De ClercqJ. J. DeLaunayH. DembinskiK. DeoskarS. De RidderP. DesiatiK. D. de VriesG. de WasseigeM. de WithT. DeYoungJ. C. Díaz-VélezH. DujmovicM. DunkmanE. DvorakB. EberhardtT. EhrhardtB. EichmannP. EllerP. A. EvensonS. FaheyA. R. FazelyJ. FeldeK. FilimonovC. FinleyA. FranckowiakE. FriedmanA. FritzT. K. GaisserJ. GallagherE. GansterS. GarrappaL. GerhardtK. GhorbaniW. GiangT. GlauchT. GlüsenkampA. GoldschmidtJ. G. GonzalezD. GrantZ. GriffithC. HaackA. HallgrenL. HalveF. HalzenK. HansonD. HebeckerD. HeeremanK. HelbingR. HellauerS. HickfordJ. HignightG. C. HillK. D. HoffmanR. HoffmannT. HoinkaB. Hokanson-FasigK. HoshinaF. HuangM. HuberK. HultqvistM. HünnefeldR. HussainS. InN. IovineA. IshiharaE. JacobiG. S. JaparidzeM. JeongK. JeroB. J. P. JonesP. KalaczynskiW. KangA. KappesD. KappesserT. KargA. KarleU. KatzM. KauerA. KeivaniJ. L. KelleyA. KheirandishJ. KimT. KintscherJ. KirylukT. KittlerS. R. KleinR. KoiralaH. KolanoskiL. KöpkeC. KopperS. KopperD. J. KoskinenM. KowalskiK. KringsM. KrollG. KrücklS. KunwarN. KurahashiA. KyriacouM. LabareJ. L. LanfranchiM. J. LarsonF. LauberK. LeonardM. LeuermannQ. R. LiuE. LohfinkC. J. Lozano MariscalL. LuJ. LünemannW. LuszczakJ. MadsenG. MaggiK. B. M. MahnY. MakinoS. MancinaI. C. MarişR. MaruyamaK. MaseR. MaunuK. MeagherM. MediciM. MeierT. MenneG. MerinoT. MeuresS. MiareckiJ. MicallefG. MomentéT. MontaruliR. W. MooreM. MoulaiR. NagaiR. NahnhauerP. NakarmiU. NaumannG. NeerH. NiederhausenS. C. NowickiD. R. NygrenA. Obertacke PollmannA. OlivasA. O’MurchadhaE. O’SullivanT. PalczewskiH. PandyaD. V. PankovaP. PeifferC. Pérez de los HerosD. PielothE. PinatA. PizzutoM. PlumP. B. PriceG. T. PrzybylskiC. RaabM. RameezL. RauchK. RawlinsI. C. ReaR. ReimannB. RelethfordG. RenziE. ResconiW. RhodeM. RichmanS. RobertsonM. RongenC. RottT. RuheD. RyckboschD. RysewykI. SafaS. E. Sanchez HerreraA. SandrockJ. SandroosM. SantanderS. SarkarK. SataleckaM. SchaufelP. SchlunderT. SchmidtA. SchneiderJ. SchneiderS. SchönebergL. SchumacherS. SclafaniD. SeckelS. SeunarineJ. SoedingreksoD. SoldinM. SongG. M. SpiczakC. SpieringJ. StachurskaM. StamatikosT. StanevA. StasikR. SteinJ. StettnerA. SteuerT. StezelbergerR. G. StokstadA. StößlN. L. StrotjohannT. StuttardG. W. SullivanM. SutherlandI. TaboadaF. TenholtS. Ter-AntonyanA. TerliukS. TilavM. N. TobinC. TönnisS. ToscanoD. TosiM. TselengidouC. F. TungA. TurcatiR. TurcotteC. F. TurleyB. TyE. UngerM. A. Unland ElorrietaM. UsnerJ. VandenbrouckeW. Van DriesscheD. van EijkN. van EijndhovenS. VanheuleJ. van SantenM. VraegheC. WalckA. WallaceM. WallraffF. D. WandlerN. WandkowskyT. B. WatsonC. WeaverM. J. WeissC. WendtJ. WerthebachS. WesterhoffB. J. WhelanN. WhitehornK. WiebeC. H. WiebuschL. WilleD. R. WilliamsL. WillsM. WolfJ. WoodT. R. WoodE. WoolseyK. WoschnaggG. WredeD. L. XuX. W. XuY. XuJ. P. YanezG. YodhS. YoshidaT. Yuan
Source
European Physical Journal C: Particles and Fields, Vol 79, Iss 3, Pp 1-19 (2019)
Subject
Astrophysics
QB460-466
Nuclear and particle physics. Atomic energy. Radioactivity
QC770-798
Language
English
ISSN
1434-6044
1434-6052
Abstract
Abstract The IceCube Collaboration has observed a high-energy astrophysical neutrino flux and recently found evidence for neutrino emission from the blazar TXS 0506$$+$$ + 056. These results open a new window into the high-energy universe. However, the source or sources of most of the observed flux of astrophysical neutrinos remains uncertain. Here, a search for steady point-like neutrino sources is performed using an unbinned likelihood analysis. The method searches for a spatial accumulation of muon-neutrino events using the very high-statistics sample of about 497,000 neutrinos recorded by IceCube between 2009 and 2017. The median angular resolution is $$\sim 1^\circ $$ ∼1∘ at 1 TeV and improves to $$\sim 0.3^\circ $$ ∼0.3∘ for neutrinos with an energy of 1 PeV. Compared to previous analyses, this search is optimized for point-like neutrino emission with the same flux-characteristics as the observed astrophysical muon-neutrino flux and introduces an improved event-reconstruction and parametrization of the background. The result is an improvement in sensitivity to the muon-neutrino flux compared to the previous analysis of $$\sim 35\%$$ ∼35% assuming an $$E^{-2}$$ E-2 spectrum. The sensitivity on the muon-neutrino flux is at a level of $$E^2 \mathrm {d} N /\mathrm {d} E = 3\cdot 10^{-13}\,\mathrm {TeV}\,\mathrm {cm}^{-2}\,\mathrm {s}^{-1}$$ E2dN/dE=3·10-13TeVcm-2s-1 . No new evidence for neutrino sources is found in a full sky scan and in an a priori candidate source list that is motivated by gamma-ray observations. Furthermore, no significant excesses above background are found from populations of sub-threshold sources. The implications of the non-observation for potential source classes are discussed.