4 research outputs found
Fundamental physics in space with the Fermi Gamma-ray Space Telescope
Successfully launched in June 2008, the Fermi Gamma-ray Space Telescope,
formerly named GLAST, has been observing the high-energy gamma-ray sky with
unprecedented sensitivity for more than two years, opening a new window on a
wide variety of exotic astrophysical objects. This paper is a short overview of
the main science highlights, aimed at non-specialists, with emphasis on those
which are more directly connected with the study of fundamental
physics---particularly the search for signals of new physics in the diffuse
gamma-ray emission and in the cosmic radiation and the study of Gamma-Ray Burst
as laboratories for testing possible violations of the Lorentz invariance.Comment: 12 pages, 7 figures, submitted for the proceedings of DICE 201
Non-Baryonic Dark Matter - Observational Evidence and Detection Methods
The evidence for the existence of dark matter in the universe is reviewed. A
general picture emerges, where both baryonic and non-baryonic dark matter is
needed to explain current observations. In particular, a wealth of
observational information points to the existence of a non-baryonic component,
contributing between around 20 and 40 percent of the critical mass density
needed to make the universe geometrically flat on large scales. In addition, an
even larger contribution from vacuum energy (or cosmological constant) is
indicated by recent observations. To the theoretically favoured particle
candidates for non-baryonic dark matter belong axions, supersymmetric
particles, and of less importance, massive neutrinos. The theoretical
foundation and experimental situation for each of these is reviewed. Direct and
indirect methods for detection of supersymmetric dark matter are described in
some detail. Present experiments are just reaching the required sensitivity to
discover or rule out some of these candidates, and major improvements are
planned over the coming years.Comment: Submitted to Reports on Progress in Physics, 59 pages, LaTeX, iopart
macro, 14 embedded postscript figure
Positrons and antiprotons from inert doublet model dark matter
In the framework of the Inert Doublet Model, a very simple extension of the
Standard Model, we study the production and propagation of antimatter in cosmic
rays coming from annihilation of a scalar dark matter particle. We consider
three benchmark candidates, all consistent with the WMAP cosmic abundance and
existing direct detection experiments, and confront the predictions of the
model with the recent PAMELA, ATIC and HESS data. For a light candidate, M_{DM}
= 10 GeV, we argue that the positron and anti-proton fluxes may be large, but
still consistent with expected backgrounds, unless there is an enhancement
(boost factor) in the local density of dark matter. There is also a substantial
anti-deuteron flux which might be observable by future experiments. For a
candidate with M_{DM} = 70 GeV, the contribution to positron and anti-proton
fluxes is much smaller than the expected backgrounds. Even if a boost factor is
invoked to enhance the signals, the candidate is unable to explain the observed
positron and anti-proton excesses. Finally, for a heavy candidate, M_{DM} = 10
TeV, it is possible to fit the PAMELA excess (but, unfortunately, not the ATIC
one) provided there is a large enhancement, either in the local density of dark
matter or through the Sommerfeld effect.Comment: 17 pages ; v2: matches JCAP published versio
Cosmic Rays from Leptophilic Dark Matter Decay via Kinetic Mixing.
If interpreted in terms of decaying dark matter, the steep rise in the
positron fraction of cosmic rays above 10 GeV, as observed by the PAMELA
experiment, suggests an underlying production mechanism that favors leptonic
channels. We consider a scenario where a portion of the dark matter is made of
the gauginos of an unbroken hidden-sector U(1), which interact with the visible
sector only through a tiny kinetic mixing. The second component of the dark
matter is made of neutralinos, and depending on the mass spectrum, the lightest
neutralino or the hidden gaugino becomes unstable and subject to decay. We
analyze the cosmic rays, namely the contributions to the positron, the
extragalactic gamma-ray and the antiproton flux, which potentially result from
these decays and demonstrate that the production of antiprotons can be
naturally suppressed. Furthermore, we briefly discuss the apparent double-peak
structure of the ATIC data in light of cascade-decaying hidden gauginos, as
well as possible signatures at Fermi.Comment: 29 pages, 5 figure