Title: | Constraints on Lorentz invariance violation from the extraordinary Mrk 421 flare of 2014 using a novel analysis method |
Author: | Abe, S. Abhir, J. Abhishek, A. Acciari, V.A. Aguasca Cabot, Arnau Agudo, I. Aniello, T. Ansoldi, S. Antonelli, L.A. Arbet Engels, A. Arcaro, C. Artero, M. Asano, K. Babić, A. Baquero, A. Barres de Almeida, U. Barrio, J.A. Batković, I. Bautista, A. Baxter, J. Becerra González, J. Bednarek, W. Bernardini, E. Bernete, J. Berti, A. Besenrieder, J. Bigongiari, C. Biland, A. Blanch, O. Bonnoli, G. Bošnjak, Z. Bronzini, E. Burelli, I. Busetto, G. Campoy-Ordaz, A. Carosi, A. Carosi, R. Carretero-Castrillo, Mar Castro-Tirado, A.J. Cerasole, D. Ceribella, G. Chai, Y. Cifuentes, A. Colombo, E. Contreras, J.L. Cortina, J. Covino, S. D'Amico, G. D'Elia, V. Da Vela, P. Dazzi, F. De Angelis, A. De Lotto, B. de Menezes, R. Del Popolo, A. Delfino, M. Delgado, J. Delgado Mendez, C. Di Pierro, F. Di Tria, R. Di Venere, L. Dominis Prester, D. Donini, A. Dorner, D. Doro, M. Elsaesser, D. Emery, G. Escudero, J. Fariña, L. Fattorini, A. Foffano, L. Font, L. Fröse, S. Fukami, S. Fukazawa, Y. García López, R.J. Garczarczyk, M. Gasparyan, S. Gaug, M. Giesbrecht Paiva, J.G. Giglietto, N. Giordano, F. Gliwny, P. Godinović, N. Gradetzke, T. Grau, R. Green, D. Green, J.G. Günther, P. Hadasch, D. Hahn, A. Hassan, T. Heckmann, L. Herrera, J. Hrupec, D. Hütten, M. Imazawa, R. Ishio, K. Jiménez Martínez, I. Jormanainen, J. Kayanoki, T. Kerszberg, D. Kluge, G.W. Kobayashi, Y. Kouch, P.M. Kubo, H. Kushida, J. Láinez, M. Lamastra, A. Leone, F. Lindfors, E. Linhoff, L. Lombardi, S. Longo, F. López-Coto, R. López-Moya, M. López-Oramas, A. Loporchio, S. Lorini, A. Lyard, E. Machado de Oliveira Fraga, B. Majumdar, P. Makariev, M. Maneva, G. Manganaro, M. Mangano, S. Mannheim, K. Mariotti, M. Martínez, M. Martínez-Chicharro, M. Mas-Aguilar, A. Mazin, D. Menchiari, S. Mender, S. Miceli, D. Miener, T. Miranda, J.M. Mirzoyan, R. Molero González, M. Molina, Edgar Mondal, H.A. Moralejo, A. Morcuende, D. Nakamori, T. Nanci, C. Neustroev, V. Nickel, L. Nievas Rosillo, M. Nigro, C. Nikolić, L. Nilsson, K. Nishijima, K. Njoh Ekoume, T. Noda, K. Nogues, L. Nozaki, S. Ohtani, Y. Okumura, A. Otero-Santos, J. Paiano, S. Palatiello, M. Paneque, D. Paoletti, R. Paredes i Poy, Josep Maria Peresano, M. Persic, M. Pihet, M. Pirola, G. Podobnik, F. Prada Moroni, P.G. Prandini, E. Principe, G. Priyadarshi, C. Rhode, W. Ribó Gomis, Marc Rico, J. Righi, C. Sahakyan, N. Saito, T. Satalecka, K. Saturni, F.G. Schleicher, B. Schmidt, K. Schmuckermaier, F. Schubert, J.L. Schweizer, T. Sciaccaluga, A. Silvestri, G. Sitarek, J. Sliusar, V. Sobczynska, D. Stamerra, A. Strišković, J. Strom, D. Suda, Y. Suutarinen, S. Tajima, H. Takahashi, M. Takeishi, R. Tavecchio, F. Temnikov, P. Terauchi, K. Terzić, T. Teshima, M. Truzzi, S. Tutone, A. Ubach, S. van Scherpenberg, J. Vazquez Acosta, M. Ventura, S. Viale, I. Vigorito, C.F. Vitale, V. Vovk, I. Walter, R. Will, M. Wunderlich, C. Yamamoto, T. |
Keywords: | Telescopis Nucli galàctic actiu Raigs gamma Telescopes Active galactic nuclei Gamma rays |
Issue Date: | 1-Jul-2024 |
Publisher: | Institute of Physics (IOP) |
Abstract: | The Lorentz Invariance Violation (LIV), a proposed consequence of certain quantum gravity (QG) scenarios, could instigate an energy-dependent group velocity for ultra-relativistic particles. This energy dependence, although suppressed by the massive QG energy scale E_QG, expected to be on the level of the Planck energy 1.22 × 10<sup>19</sup> GeV, is potentially detectable in astrophysical observations. In this scenario, the cosmological distances traversed by photons act as an amplifier for this effect. By leveraging the observation of a remarkable flare from the blazar Mrk 421, recorded at energies above 100 GeV by the MAGIC telescopes on the night of April 25 to 26, 2014, we look for time delays scaling linearly and quadratically with the photon energies. Using for the first time in LIV studies a binned-likelihood approach we set constraints on the QG energy scale. For the linear scenario, we set 95% lower limits E_QG>2.7×10<sup>17</sup> GeV for the subluminal case and E_QG> 3.6 ×10<sup>17</sup> GeV for the superluminal case. For the quadratic scenario, the 95% lower limits for the subluminal and superluminal cases are E_QG>2.6 ×10<sup>10</sup> GeV and E_QG>2.5×10<sup>10</sup> GeV, respectively. |
Note: | Versió postprint del document publicat a: https://doi.org/10.1088/1475-7516/2024/07/044 |
It is part of: | Journal of Cosmology and Astroparticle Physics, 2024, vol. 2024, num.7 |
URI: | https://hdl.handle.net/2445/220975 |
Related resource: | https://doi.org/10.1088/1475-7516/2024/07/044 |
ISSN: | 1475-7516 |
Appears in Collections: | Articles publicats en revistes (Física Quàntica i Astrofísica) Articles publicats en revistes (Institut de Ciències del Cosmos (ICCUB))
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