The project was designed to follow the state of the art of indirect probes of new physical phenomena in space. Accordingly, the objectives and results were dynamically synced with arising possible signals of new physics. Below the objectives are directly linked withe the list of the research publication, which contain the main results of the project. (The citations of the publications counted by the INSPIRE database as of 28 Mar 2018,
http://inspirehep.net/(s’ouvre dans une nouvelle fenêtre))
O1: The hint of di-photon excess at the LHC detectors CMS and ATLAS. The excess appeared in the beginning of the project period. In the following paper we related the excess to the other physical phenomenas. In Pub1 we related the excess with an other “anomaly”, the gamma-ray excess at the Galactic Centre in the energy range 2-5 GeV. In Pub2 we related the excess to a possible model of dark matter.
Publ1: A.Hektor and L.Marzola JCAP 1607 (2016) no.07 042, doi:10.1088/1475-7516/2016/07/042 arXiv:1602.00004 (20 citations)
Pub2: S.Di Chiara, A.Hektor K.Kannike L.Marzola and M.Raidal Nucl. Phys. B 917 (2017) 31, doi:10.1016/j.nuclphysb.2017.02.001 arXiv:1603.07263 (18 citations)
O2: Some collusions of galaxy clusters show an anomalous feature, a possible dark matter concentration at the collusion area. It seems to hint that dark matter can be more strongly interaction than expected by most popular scenarios, e.g. WIMPs etc. In Pub3 we offered explanation of the features by collusionless shocks of “dark plasma”, which are similar to collusionless shocks in cosmic plasma.
Pub3: C.Spethmann H.Veermäe, T.Sepp M.Heikinheimo B.Deshev A.Hektor and M.Raidal Astron. Astrophys. 608 (2017) A125, doi:10.1051/0004-6361/201731299 arXiv:1603.07324 (11 citations)
O3: The objective follows the study line of cosmic rays, gamma ray signals hinting new physics. In Pub4 we calculated and estimated the strength of a new interesting phenomena, a line feature in cosmic gamma-ray spectrum. So far the line feature in a certain set of dark matter models had been neglected by previous authors. We estimated the constraints from the gamma-ray line signal for the set of models.
Pub4: A.Hektor L.Marzola and T.Tuvi Phys. Rev. D 95 (2017) no.12 121301, doi:10.1103/PhysRevD.95.121301 arXiv:1702.02580 (8 citations)
O4: A new exiting observational window appeared in the beginning of the project period, directly observed gravitational waves. The LISA, and later Virgo, experiments measured gravitational waves radiated by the mergers of black hole and neutron star binaries. It is one of the most exiting discovery in physics of last decades. It allows to test gravitational physics very directly. It sheds light to stellar and galaxy evolution, some cosmological problems. We had one of the first paper, Pub5, showing that the gravitational wave signal from merge of neutron stars can hint the accreted dark matter by neutron stars. In the second related paper, Pub6, we studied the effects of electroweak phase transition on the freeze-out of dark matter in the early Universe. We showed that those models predicts gravitational waves reachable for the next generation gravitational wave experiments.
Pub5: J.Ellis A.Hektor G.Hütsi, K.Kannike L.Marzola M.Raidal and V.Vaskonen arXiv:1710.05540 (3 citations)
Pub6: A.Hektor K.Kannike and V.Vaskonen arXiv:1801.06184
O5: Within the project period we started to sharpen our knowledge on the cosmic 21 cm signal from neutral atomic hydrogen in the young Universe (from the recombination to reionization). The preprints of the publications appeared after the project period, but based strongly on the work done within the project.
Pub7: S.Fraser A.Hektor G.Hütsi, K.Kannike C.Marzo L.Marzola C.Spethmann A.Racioppi M.Raidal V.Vaskonen and H.Veermäe, arXiv:1803.03245 (11 citations)
Pub8: A.Hektor G.Hütsi, L.Marzola M.Raidal V.Vaskonen and H.Veermäe, arXiv:1803.09697