Measuring the cosmic ray flux over timescales comparable to the age of the Solar System, ∼4.5  Gyr, could provide a new window on the history of the Earth, the Solar System, and even our Galaxy. We present a technique to indirectly measure the rate of cosmic rays as a function of time using the imprints of atmospheric neutrinos in "paleo-detectors," natural minerals that record damage tracks from nuclear recoils. Minerals commonly found on Earth are ≲1  Gyr old, providing the ability to look back across cosmic ray history on timescales of the same order as the age of the Solar System. Given a collection of differently aged samples dated with reasonable accuracy, this technique is particularly well-suited to measuring historical changes in the cosmic ray flux at Earth and is broadly applicable in astrophysics and geophysics.

Jordan, J.r., Baum, S., Stengel, P., Ferrari, A., Morone, M.c., Sala, P., et al. (2020). Measuring changes in the atmospheric neutrino rate over Gigayear timescales. PHYSICAL REVIEW LETTERS, 125(23), 231802 [10.1103/PhysRevLett.125.231802].

Measuring changes in the atmospheric neutrino rate over Gigayear timescales

Morone M. C.;
2020-01-01

Abstract

Measuring the cosmic ray flux over timescales comparable to the age of the Solar System, ∼4.5  Gyr, could provide a new window on the history of the Earth, the Solar System, and even our Galaxy. We present a technique to indirectly measure the rate of cosmic rays as a function of time using the imprints of atmospheric neutrinos in "paleo-detectors," natural minerals that record damage tracks from nuclear recoils. Minerals commonly found on Earth are ≲1  Gyr old, providing the ability to look back across cosmic ray history on timescales of the same order as the age of the Solar System. Given a collection of differently aged samples dated with reasonable accuracy, this technique is particularly well-suited to measuring historical changes in the cosmic ray flux at Earth and is broadly applicable in astrophysics and geophysics.
2020
Pubblicato
Rilevanza internazionale
Articolo
Esperti anonimi
Settore FIS/07 - FISICA APPLICATA (A BENI CULTURALI, AMBIENTALI, BIOLOGIA E MEDICINA)
English
Monte Carlo hadronic interactions
Jordan, J.r., Baum, S., Stengel, P., Ferrari, A., Morone, M.c., Sala, P., et al. (2020). Measuring changes in the atmospheric neutrino rate over Gigayear timescales. PHYSICAL REVIEW LETTERS, 125(23), 231802 [10.1103/PhysRevLett.125.231802].
Jordan, Jr; Baum, S; Stengel, P; Ferrari, A; Morone, Mc; Sala, P; Spitz, J
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2108/264451
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