[1] Alexander Aab et al. Limits on point-like sources of ultra-high-energy neutrinos with the Pierre Auger Observatory. JCAP, 1911(11):004, 2019. [ bib | DOI | arXiv ]
[2] A. Aab et al. Data-driven estimation of the invisible energy of cosmic ray showers with the Pierre Auger Observatory. Submitted to: Phys. Rev. D, 2019. [ bib | arXiv ]
[3] Alexander Aab et al. Probing the origin of ultra-high-energy cosmic rays with neutrinos in the EeV energy range using the Pierre Auger Observatory. JCAP, 1910(10):022, 2019. [ bib | DOI | arXiv ]
[4] Alexander Aab et al. Multi-Messenger Physics with the Pierre Auger Observatory. Front. Astron. Space Sci., 6:24, 2019. [ bib | DOI | arXiv ]
[5] Alexander Aab et al. Measurement of the average shape of longitudinal profiles of cosmic-ray air showers at the Pierre Auger Observatory. Submitted to: JCAP, 2018. [ bib | arXiv ]
[6] A. Aab et al. Large-scale cosmic-ray anisotropies above 4 EeV measured by the Pierre Auger Observatory. Astrophys. J., 868(1):4, 2018. [ bib | DOI | arXiv ]
[7] Alexander Aab et al. Observation of inclined EeV air showers with the radio detector of the Pierre Auger Observatory. JCAP, 1810(10):026, 2018. [ bib | DOI | arXiv ]
[8] Alexander Aab et al. An Indication of anisotropy in arrival directions of ultra-high-energy cosmic rays through comparison to the flux pattern of extragalactic gamma-ray sources. Astrophys. J., 853(2):L29, 2018. [ bib | DOI | arXiv ]
[9] Alexander Aab et al. Inferences on mass composition and tests of hadronic interactions from 0.3 to 100 EeV using the water-Cherenkov detectors of the Pierre Auger Observatory. Phys. Rev., D96(12):122003, 2017. [ bib | DOI | arXiv ]
[10] A. Albert et al. Search for High-energy Neutrinos from Binary Neutron Star Merger GW170817 with ANTARES, IceCube, and the Pierre Auger Observatory. Astrophys. J., 850(2):L35, 2017. [ bib | DOI | arXiv ]
[11] B. P. Abbott et al. Multi-messenger Observations of a Binary Neutron Star Merger. Astrophys. J., 848(2):L12, 2017. [ bib | DOI | arXiv ]
[12] Alexander Aab et al. Calibration of the logarithmic-periodic dipole antenna (LPDA) radio stations at the Pierre Auger Observatory using an octocopter. JINST, 12(10):T10005, 2017. [ bib | DOI | arXiv ]
[13] Alexander Aab et al. Observation of a Large-scale Anisotropy in the Arrival Directions of Cosmic Rays above 8 ×1018 eV. Science, 357(6537):1266--1270, 2017. [ bib | DOI | arXiv ]
[14] Alexander Aab et al. Spectral Calibration of the Fluorescence Telescopes of the Pierre Auger Observatory. Astropart. Phys., 95:44--56, 2017. [ bib | DOI | arXiv ]
[15] Alexander Aab et al. Multi-resolution anisotropy studies of ultrahigh-energy cosmic rays detected at the Pierre Auger Observatory. JCAP, 1706(06):026, 2017. [ bib | DOI | arXiv ]
[16] Alexander Aab et al. Combined fit of spectrum and composition data as measured by the Pierre Auger Observatory. JCAP, 1704(04):038, 2017. [Erratum: JCAP1803,no.03,E02(2018)]. [ bib | DOI | arXiv ]
[17] Alexander Aab et al. Search for photons with energies above 1018 eV using the hybrid detector of the Pierre Auger Observatory. JCAP, 1704(04):009, 2017. [ bib | DOI | arXiv ]
[18] Alexander Aab et al. A targeted search for point sources of EeV photons with the Pierre Auger Observatory. Astrophys. J., 837(2):L25, 2017. [ bib | DOI | arXiv ]
[19] Alexander Aab et al. Impact of Atmospheric Effects on the Energy Reconstruction of Air Showers Observed by the Surface Detectors of the Pierre Auger Observatory. JINST, 12(02):P02006, 2017. [ bib | DOI | arXiv ]

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