Effective Field Theory of Dark Matter: a Global Analysis
Sebastian Liem, Gianfranco Bertone, Francesca Calore, Roberto Ruiz de, Austri, Tim M.P. Tait, Roberto Trotta, Christoph Weniger

TL;DR
This paper performs a comprehensive global analysis of scalar dark matter models using effective field theory, combining multiple astrophysical and experimental data to constrain model parameters and explore the potential explanation of the Galactic centre gamma-ray excess.
Contribution
It introduces a unified EFT framework for scalar dark matter, integrating diverse observational constraints and demonstrating its capability to interpret gamma-ray excesses.
Findings
Real scalar dark matter likely above 100 GeV in mass.
Complex scalar models have more freedom, easing tensions with observations.
Current data insufficient for strong parameter constraints.
Abstract
We present global fits of an effective field theory description of real, and complex scalar dark matter candidates. We simultaneously take into account all possible dimension 6 operators consisting of dark matter bilinears and gauge invariant combinations of quark and gluon fields. We derive constraints on the free model parameters for both the real (five parameters) and complex (seven) scalar dark matter models obtained by combining Planck data on the cosmic microwave background, direct detection limits from LUX, and indirect detection limits from the Fermi Large Area Telescope. We find that for real scalars indirect dark matter searches disfavour a dark matter particle mass below 100 GeV. For the complex scalar dark matter particle current data have a limited impact due to the presence of operators that lead to p-wave annihilation, and also do not contribute to the spin-independent…
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