6533b7ddfe1ef96bd1274857
RESEARCH PRODUCT
Search for low-energy neutrinos from astrophysical sources with Borexino
V. AtroshchenkoAlessandra ReR. TartagliaD. JeschkeE. V. HungerfordLothar OberauerÖ. PenekÖ. PenekJ. ThurnG. BonfiniFrank CalapriceMatteo AgostiniM. T. RanalliA. SotnikovMatthias LaubensteinS. AppelG. LukyanchenkoG. TesteraS. MarcocciAndrey FormozovAndrey FormozovS. KumaranS. KumaranL. LukyanchenkoK. ChoiY. SuvorovLivia LudhovaLivia LudhovaA. M. GorettiA. S. ChepurnovAn. IanniF. CavannaB. CaccianigaG. ZuzelF. Von FeilitzschM. GromovM. GromovR. B. VogelaarE. MeroniI. N. MachulinI. N. MachulinCristiano GalbiatiD. A. SemenovA. V. DerbinV. OrekhovG. BelliniD. D'angeloL. PappM. RedchukM. RedchukA. JanyI. LomskayaV. Di MarcelloO. ZaimidorogaN. RossiI. S. DrachnevTobias LachenmaierJ. MartynMarco GiammarchiE. LitvinovichE. LitvinovichV. N. MuratovaV. V. KobychevM. GschwenderFausto OrticaA. VishnevaM. D. SkorokhvatovM. D. SkorokhvatovMichael WurmD. GuffantiJ. MaricicXuefeng DingLino MiramontiD. BasilicoA. Di LudovicoC. GhianoKai ZuberCaren HagnerG. KorgaG. ManuzioB. NeumairM. MeyerL. PietrofacciaD. BickSandra ZavatarelliA. Di GiacintoN. PilipenkoA. RazetoP. CavalcanteD. BravoD. FrancoM. MisiaszekPaolo LombardiGioacchino RanucciA. PocarS. RottenangerS. DaviniO. SmirnovS. SchönertE. V. UnzhakovMarcin WójcikK. AltenmüllerM. NieslonyA. CaminataMarco PallaviciniF. GabrieleBarbara RicciG. RaikovZ. BagdasarianL. CappelliJay Burton BenzigerAldo RomaniL. Di Notosubject
antineutrinosPhysics - Instrumentation and Detectorssolar flaresmagnetic field: highneutrino: solarPhysics::Instrumentation and DetectorsSolar neutrinoscintillation counter: liquidelastic scatteringantineutrino/e: particle identification01 natural sciences7. Clean energyneutrino: fluxlaw.inventionHigh Energy Physics - ExperimentHigh Energy Physics - Experiment (hep-ex)law[PHYS.HEXP]Physics [physics]/High Energy Physics - Experiment [hep-ex]neutrino: supernova26.65.+t010303 astronomy & astrophysicsBorexinoElastic scatteringPhysicsSolar flareSupernova Relic Neutrinosneutrino: energy spectrumS067EB8neutrinosInstrumentation and Detectors (physics.ins-det)neutrino: magnetic momentDiffuse Supernova Neutrino Background3. Good healthSupernovaHomestakeddc:540neutrino: flavorAntineutrinoBorexinoNeutrino97.60.BwHomestake experimentFlareantineutrino/e: fluxAntineutrinos13.15.+G; 26.65.+T; 29.40.Mc; 97.60.Bw; Antineutrinos; Diffuse supernova neutrino background; Neutrinos; Solar flares; Supernova relic neutrinosAstrophysics::High Energy Astrophysical PhenomenaFOS: Physical sciencesSupernova relic neutrinosupernova relic neutrinosNONuclear physics13.15.+gPE2_2Antineutrinos; Neutrinos; Diffuse supernova neutrino background; Supernova relic neutrinos; Solar flares0103 physical sciencesNeutrino[PHYS.PHYS.PHYS-INS-DET]Physics [physics]/Physics [physics]/Instrumentation and Detectors [physics.ins-det]Neutrinosdiffuse supernova neutrino background010308 nuclear & particles physicsHigh Energy Physics::PhenomenologyAstronomy and Astrophysicsneutrino: particle source29.40.McGran SassoSolar flareSolar Flares13. Climate actionspectralHigh Energy Physics::Experimentexperimental resultsdescription
We report on searches for neutrinos and antineutrinos from astrophysical sources performed with the Borexino detector at the Laboratori Nazionali del Gran Sasso in Italy. Electron antineutrinos ($\bar{\nu}_e$) are detected in an organic liquid scintillator through the inverse $\beta$-decay reaction. In the present work we set model-independent upper limits in the energy range 1.8-16.8 MeV on neutrino fluxes from unknown sources that improve our previous results, on average, by a factor 2.5. Using the same data set, we first obtain experimental constraints on the diffuse supernova $\bar{\nu}_e$ fluxes in the previously unexplored region below 8 MeV. A search for $\bar{\nu}_e$ in the solar neutrino flux is also presented: the presence of $\bar{\nu}_e$ would be a manifestation of a non-zero anomalous magnetic moment of the neutrino, making possible its conversion to antineutrinos in the strong magnetic field of the Sun. We obtain a limit for a solar $\bar{\nu}_e$ flux of 384 cm$^{-2}$s$^{-1}$ (90% C.L.), assuming an undistorted solar $^{8}$B neutrinos energy spectrum, that corresponds to a transition probability $p_{ \nu_e \rightarrow \bar\nu_{e}}$ 1.8 MeV. At lower energies, by investigating the spectral shape of elastic scattering events, we obtain a new limit on solar $^{7}$Be-$\nu_e$ conversion into $\bar{\nu}_e$ of $p_{ \nu_e \rightarrow \bar \nu_{e}}<$ 0.14 (90% C.L.) at 0.862 keV. Last, we investigate solar flares as possible neutrino sources and obtain the strongest up-to-date limits on the fluence of neutrinos of all flavor neutrino below 3-7 ,MeV. Assuming the neutrino flux to be proportional to the flare's intensity, we exclude an intense solar flare as the cause of the observed excess of events in run 117 of the Cl-Ar Homestake experiment.
year | journal | country | edition | language |
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2019-10-15 |