Hybrid radio-scintillator arrays can separate UHE photon and cosmic-ray air showers via radio RMS and scintillator energy deposit, enabling competitive photon flux upper limits in the 0.3-3 EeV range for a GRANDProto300-like layout.
Searching for EeV photons with Telescope Array Surface Detector and neural networks
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abstract
Ultra-high-energy photons play an important role in probing astrophysical models and beyond-Standard-Model scenarios. We report updated limits on the diffuse photon flux using Telescope Array's Surface Detector data collected over 14 years of operation. Our method employs a neural network classifier to effectively distinguish between proton-induced and photon-induced events. The input data include both reconstructed composition-sensitive parameters and raw time-resolved signals registered by the Surface Detector stations. To mitigate biases from Monte Carlo simulations, we fine-tune the network with a subset of experimental data. The number of observed photon candidates is found to be consistent with the expected hadronic background, yielding upper limits on photon flux $\Phi_\gamma(E_\gamma > 10^{19} \text{eV}) < 2.3 \cdot 10^{-3} $, and $\Phi_\gamma(E_\gamma > 10^{20} \text{eV}) < 3.0 \cdot 10^{-4} $ $ (\text{km}^2 \cdot \text{sr} \cdot \text{yr})^{-1} $.
fields
astro-ph.HE 1years
2026 1verdicts
UNVERDICTED 1representative citing papers
citing papers explorer
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Hybrid radio and particle detection of air showers: potential for ultra-high-energy photon identification
Hybrid radio-scintillator arrays can separate UHE photon and cosmic-ray air showers via radio RMS and scintillator energy deposit, enabling competitive photon flux upper limits in the 0.3-3 EeV range for a GRANDProto300-like layout.