364 research outputs found
Swift follow-up of IceCube triggers, and implications for the Advanced-LIGO era
Between 2011 March and 2014 August Swift responded to 20 triggers from the
IceCube neutrino observatory, observing the IceCube 50% confidence error circle
in X-rays, typically within 5 hours of the trigger. No confirmed counterpart
has been detected. We describe the Swift follow up strategy and data analysis
and present the results of the campaign. We discuss the challenges of
distinguishing the X-ray counterpart to a neutrino trigger from serendipitous
uncatalogued X-ray sources in the error circle, and consider the implications
of our results for future strategies for multi-messenger astronomy, with
particular reference to the follow up of gravitational wave triggers from the
advanced-era detectors.Comment: Accepted for publication in MNRAS. 18 pages, including 8 figures and
4 tables; two of which are landscape-oriente
Patterns in the multi-wavelength behavior of candidate neutrino blazars
Motivated by the identification of the blazar TXS 0506+056 as the first
promising high-energy neutrino counterpart candidate, we search for additional
neutrino blazars candidates among the Fermi-LAT detected blazars.
We investigate the multi-wavelength behavior from radio to GeV gamma rays of
blazars found to be in spatial coincidence with single high-energy neutrinos
and lower-energy neutrino flare candidates. In addition, we compare the average
gamma-ray emission of the potential neutrino-emitting sources to the entire
sample of gamma-ray blazars. We find that neutrino-emitting blazar candidates
are statistically compatible with both hypothesis of a linear correlation and
of no correlation between neutrino and gamma-ray energy flux.Comment: accepted for publication by Ap
UV to near-IR observations of the DART-Dimorphos collision
The impact of the Double Asteroid Redirection Test (DART) spacecraft with
Dimorphos allows us to study asteroid collision physics, including momentum
transfer, the ejecta properties, and the visibility of such events in the Solar
System. We report observations of the DART impact in the ultraviolet (UV),
visible light, and near-infrared (IR) wavelengths. The observations support the
existence of at least two separate components of the ejecta: a fast and a slow
component. The fast-ejecta component is composed of a gaseous phase, moving at
about 1.6 km/s with a mass of <10^4 kg. The fast ejecta is detected in the UV
and visible light, but not in the near-IR -band observations. Fitting a
simplified optical thickness model to these observations allows us to constrain
some of the properties of the fast ejecta, including its scattering efficiency
and the opacity of the gas. The slow ejecta component is moving at typical
velocities of up to about 10 m/s. It is composed of micrometer-size particles,
that have a scattering efficiency, at the direction of the observer, of the
order of 10^-3 and a total mass of about 10^6 kg. The larger particles in the
slow ejecta, whose size is bound to be in the range between ~1 mm to ~1 m,
likely have a scattering efficiency larger than that of the pre-impact Didymos
system.Comment: Submitted to MNRA
The IceCube Neutrino Observatory - Contributions to ICRC 2015 Part II: Atmospheric and Astrophysical Diffuse Neutrino Searches of All Flavors
Papers on atmospheric and astrophysical diffuse neutrino searches of all
flavors submitted to the 34th International Cosmic Ray Conference (ICRC 2015,
The Hague) by the IceCube Collaboration.Comment: 66 pages, 36 figures, Papers submitted to the 34th International
Cosmic Ray Conference, The Hague 2015, v2 has a corrected author lis
A combined maximum-likelihood analysis of the high-energy astrophysical neutrino flux measured with IceCube
Evidence for an extraterrestrial flux of high-energy neutrinos has now been
found in multiple searches with the IceCube detector. The first solid evidence
was provided by a search for neutrino events with deposited energies
TeV and interaction vertices inside the instrumented volume. Recent
analyses suggest that the extraterrestrial flux extends to lower energies and
is also visible with throughgoing, -induced tracks from the Northern
hemisphere. Here, we combine the results from six different IceCube searches
for astrophysical neutrinos in a maximum-likelihood analysis. The combined
event sample features high-statistics samples of shower-like and track-like
events. The data are fit in up to three observables: energy, zenith angle and
event topology. Assuming the astrophysical neutrino flux to be isotropic and to
consist of equal flavors at Earth, the all-flavor spectrum with neutrino
energies between 25 TeV and 2.8 PeV is well described by an unbroken power law
with best-fit spectral index and a flux at 100 TeV of
.
Under the same assumptions, an unbroken power law with index is disfavored
with a significance of 3.8 () with respect to the best
fit. This significance is reduced to 2.1 () if instead we
compare the best fit to a spectrum with index that has an exponential
cut-off at high energies. Allowing the electron neutrino flux to deviate from
the other two flavors, we find a fraction of at Earth.
The sole production of electron neutrinos, which would be characteristic of
neutron-decay dominated sources, is rejected with a significance of 3.6
().Comment: 16 pages, 10 figures; accepted for publication in The Astrophysical
Journal; updated one referenc
The IceCube Neutrino Observatory - Contributions to ICRC 2015 Part III: Cosmic Rays
Papers on cosmic rays submitted to the 34th International Cosmic Ray
Conference (ICRC 2015, The Hague) by the IceCube Collaboration.Comment: 83 pages, 52 figues, Papers submitted to the 34th International
Cosmic Ray Conference, The Hague 2015, v2 has a corrected author lis
Search for non-relativistic Magnetic Monopoles with IceCube
The IceCube Neutrino Observatory is a large Cherenkov detector instrumenting
of Antarctic ice. The detector can be used to search for
signatures of particle physics beyond the Standard Model. Here, we describe the
search for non-relativistic, magnetic monopoles as remnants of the GUT (Grand
Unified Theory) era shortly after the Big Bang. These monopoles may catalyze
the decay of nucleons via the Rubakov-Callan effect with a cross section
suggested to be in the range of to
. In IceCube, the Cherenkov light from nucleon decays
along the monopole trajectory would produce a characteristic hit pattern. This
paper presents the results of an analysis of first data taken from May 2011
until May 2012 with a dedicated slow-particle trigger for DeepCore, a
subdetector of IceCube. A second analysis provides better sensitivity for the
brightest non-relativistic monopoles using data taken from May 2009 until May
2010. In both analyses no monopole signal was observed. For catalysis cross
sections of the flux of non-relativistic
GUT monopoles is constrained up to a level of at a 90% confidence level,
which is three orders of magnitude below the Parker bound. The limits assume a
dominant decay of the proton into a positron and a neutral pion. These results
improve the current best experimental limits by one to two orders of magnitude,
for a wide range of assumed speeds and catalysis cross sections.Comment: 20 pages, 20 figure
Measurement of the Atmospheric Spectrum with IceCube
We present a measurement of the atmospheric spectrum at energies
between 0.1 TeV and 100 TeV using data from the first year of the complete
IceCube detector. Atmospheric originate mainly from the decays of kaons
produced in cosmic-ray air showers. This analysis selects 1078 fully contained
events in 332 days of livetime, then identifies those consistent with particle
showers. A likelihood analysis with improved event selection extends our
previous measurement of the conventional fluxes to higher energies. The
data constrain the conventional flux to be times a
baseline prediction from a Honda's calculation, including the knee of the
cosmic-ray spectrum. A fit to the kaon contribution () to the neutrino
flux finds a kaon component that is times the baseline
value. The fitted/measured prompt neutrino flux from charmed hadron decays
strongly depends on the assumed astrophysical flux and shape. If the
astrophysical component follows a power law, the result for the prompt flux is
times a calculated flux based on the work by Enberg, Reno
and Sarcevic.Comment: PRD accepted versio
Characterization of the Atmospheric Muon Flux in IceCube
Muons produced in atmospheric cosmic ray showers account for the by far
dominant part of the event yield in large-volume underground particle
detectors. The IceCube detector, with an instrumented volume of about a cubic
kilometer, has the potential to conduct unique investigations on atmospheric
muons by exploiting the large collection area and the possibility to track
particles over a long distance. Through detailed reconstruction of energy
deposition along the tracks, the characteristics of muon bundles can be
quantified, and individual particles of exceptionally high energy identified.
The data can then be used to constrain the cosmic ray primary flux and the
contribution to atmospheric lepton fluxes from prompt decays of short-lived
hadrons.
In this paper, techniques for the extraction of physical measurements from
atmospheric muon events are described and first results are presented. The
multiplicity spectrum of TeV muons in cosmic ray air showers for primaries in
the energy range from the knee to the ankle is derived and found to be
consistent with recent results from surface detectors. The single muon energy
spectrum is determined up to PeV energies and shows a clear indication for the
emergence of a distinct spectral component from prompt decays of short-lived
hadrons. The magnitude of the prompt flux, which should include a substantial
contribution from light vector meson di-muon decays, is consistent with current
theoretical predictions.Comment: 36 pages, 39 figure
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