My work developed in two main, complementary working packages, one focusing on cosmic ray research, and the other one on the interpretation of the Fermi GCE excess and BSM searches.
Regarding the cosmic ray research, I have successfully produced templates to tailor new searches of emission from middle-aged pulsar halos from X-ray to multi-TeV energies, focusing on the Geminga pulsar halo and on another candidate. I have used the results of these investigations to robustly characterize the pulsar’s halo properties, namely the ambient magnetic field, which for both sources is suggested to be of the order of few micro Gauss. Contextually, I have successfully delivered a new, state-of the art modeling of the secondary positron emission coming from spallation of primary cosmic rays, and a detailed inspection of the Galactic pulsars included in catalogs, identifying a shortlist of sources that could contribute significantly to the positron flux at Earth. This is crucial to further inform and direct future multi-wavelength observations. In addition, I have identified specific classes of MSPs that could provide a suitable environment for particle acceleration, and build phenomenological models to explain and predict their gamma ray emission in the GeV to TeV domain. This work is still in progress, and will again deliver templates to tailor searches for TeV emissions with current and future observatories.
As for the second working package, I have carefully characterized the properties of the gamma-ray emission towards the inner Galaxy at energies larger than 10 GeV, where a possible MSPs contribution can be dominating the GCE. By using publicly available Fermi-LAT data, the significance, morphology and energy spectrum of the GCE was robustly derived, and the flux distribution of faint photon sources in the inner Galaxy was measured. In the figure below, the energy spectrum of the Galactic Center excess detected in Fermi-LAT data is illustrated in linear scale to highlight the high energy tail at energies larger than 10 GeV. Model interpretations assuming dark matter annihilations or millisecond pulsar prompt (purple dotted) plus inverse Compton emission (dashed) are overlaid for comparison. The high-energy tail of the excess emission, robustly detected thanks to our work, supports the attempt of explaining, at least partially, the excess in terms of a population of point-like sources, likely corresponding to millisecond pulsars. The consequences for the dark matter interpretation of the excess are in progress, together with the finalization of a framework to predict the gamma ray signals expected for populations of MSPs in our Galaxy.
The discovery of a possible first hint for a gamma-ray emission coming from the Sagittarius dwarf spheroidal galaxy, and thus possibly from MSPs in this system inspired us to carefully evaluate the robustness of this claim, also in light of MSPs population models. As for the ALPs, I have investigated ALPs-photon signals using Fermi-LAT data by using anomaly detection techniques borrowed from machine learning, and simulated datasets.
The results of this work have been published or will be submitted soon in major peer-reviewed journals and are publicly accessible through the arXiv preprint repository. Moreover, the dissemination to the scientific community proceeded through talks and posters at main international conferences in the field, as well as in various workshops and invited seminars.