Direct Measurement of the Spectral Structure of Cosmic-Ray Electrons+Positrons in the TeV Region with CALET on the International Space Station

O. Adriani,Yosui Akaike,Katsuaki Asano, Y. Asaoka, E. Berti, G. Bigongiari, W. R. Binns, M. Bongi, P. Brogi, A. Bruno, J. H. Buckley, N. Cannady, G. Castellini, C. Checchia, M. L. Cherry, G. Collazuol,G. A. de Nolfo,Ken Ebisawa, Anthony W. Ficklin, H. Fuke, S. Gonzi, T. G. Guzik,T. Hams, K. Hibino, M. Ichimura,Kunihito Ioka, W. Ishizaki, M. H. Israel, K. Kasahara, J. Kataoka,Ryuho Kataoka, Y. Katayose, C. Kato,Norita Kawanaka, Y. Kawakubo, Kazuyoshi Kobayashi,Kazunori Kohri, H. Krawczynski,John F. Krizmanic, P. Maestro, P. S. Marrocchesi, A. Messineo,J. W. Mitchell,Shoko Miyake, А. А. Моисеев, M. Mori, N. Mori, H. Motz, K. Munakata, S. Nakahira,Jun Nishimura, S. Okuno, J. F. Ormes, S. Ozawa,Lorenzo Pacini, P. Papini, B. F. Rauch, S. Ricciarini,Kazuhiro Sakai, T. Sakamoto, M. Sasaki,Yuki Shimizu, A. Shiomi, П. Спиллантини,Francesco Stolzi, S. Sugita, A. Sulaj,M. Takita, T. Tamura, T. Terasawa,Shoji Torii, Y. Tsunesada, Y. Uchihori, E. Vannuccini,J. P. Wefel, K. Yamaoka, S. Yanagita,A. Yoshida,Kenji Yoshida, Wolfgang V Zober

Physical Review Letters(2023)

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摘要
Detailed measurements of the spectral structure of cosmic-ray electrons and positrons from 10.6 GeV to 7.5 TeV are presented from over 7 years of observations with the CALorimetric Electron Telescope (CALET) on the International Space Station. The instrument, consisting of a charge detector, an imaging calorimeter, and a total absorption calorimeter with a total depth of 30 radiation lengths at normal incidence and a fine shower imaging capability, is optimized to measure the all-electron spectrum well into the TeV region. Because of the excellent energy resolution (a few percent above 10 GeV) and the outstanding e/p separation (105), CALET provides optimal performance for a detailed search of structures in the energy spectrum. The analysis uses data up to the end of 2022, and the statistics of observed electron candidates has increased more than 3 times since the last publication in 2018. By adopting an updated boosted decision tree analysis, a sufficient proton rejection power up to 7.5 TeV is achieved, with a residual proton contamination less than 10%. The observed energy spectrum becomes gradually harder in the lower energy region from around 30 GeV, consistently with AMS-02, but from 300 to 600 GeV it is considerably softer than the spectra measured by DAMPE and Fermi-LAT. At high energies, the spectrum presents a sharp break around 1 TeV, with a spectral index change from −3.15 to −3.91, and a broken power law fitting the data in the energy range from 30 GeV to 4.8 TeV better than a single power law with 6.9 sigma significance, which is compatible with the DAMPE results. The break is consistent with the expected effects of radiation loss during the propagation from distant sources (except the highest energy bin). We have fitted the spectrum with a model consistent with the positron flux measured by AMS-02 below 1 TeV and interpreted the electron+positron spectrum with possible contributions from pulsars and nearby sources. Above 4.8 TeV, a possible contribution from known nearby supernova remnants, including Vela, is addressed by an event-by-event analysis providing a higher proton-rejection power than a purely statistical analysis.Received 2 June 2023Revised 31 July 2023Accepted 9 October 2023DOI:https://doi.org/10.1103/PhysRevLett.131.191001Published by the American Physical Society under the terms of the Creative Commons Attribution 4.0 International license. Further distribution of this work must maintain attribution to the author(s) and the published article’s title, journal citation, and DOI.Published by the American Physical SocietyPhysics Subject Headings (PhySH)Research AreasCosmic ray accelerationCosmic ray composition & spectraCosmic ray propagationCosmic ray sourcesCosmic rays & astroparticlesGravitation, Cosmology & Astrophysics
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spectral structure,cosmic-ray
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