Neutrino tomography of the Earth
Andrea Donini, Sergio Palomares-Ruiz (U. Valencia, IFIC), Jordi, Salvado (U. Valencia, IFIC, ICC, Barcelona U.)

TL;DR
This paper demonstrates how atmospheric neutrinos detected by IceCube can be used to perform Earth tomography, revealing internal density structures independently of seismic methods.
Contribution
It introduces a novel method for Earth interior study using neutrino absorption data from IceCube, providing independent verification of Earth's density profile.
Findings
Successfully determined Earth's mass and moment of inertia.
Confirmed the Earth's core is denser than the mantle.
Showed current neutrino detectors can achieve Earth tomography.
Abstract
Cosmic-ray interactions with the nuclei of the Earth's atmosphere produce a flux of neutrinos in all directions with energies extending above the TeV scale. However, the Earth is not a fully transparent medium for neutrinos with energies above a few TeV. At these energies, the charged-current neutrino-nucleon cross section is large enough so that the neutrino mean-free path in a medium with the Earth's density is comparable to the Earth's diameter. Therefore, when neutrinos of these energies cross the Earth, there is a non-negligible probability for them to be absorbed. Since this effect depends on the distance traveled by neutrinos and on their energy, studying the zenith and energy distributions of TeV atmospheric neutrinos passing through the Earth offers an opportunity to infer the Earth's density profile. Here we perform an Earth tomography with neutrinos using actual data, the…
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Taxonomy
TopicsAstrophysics and Cosmic Phenomena · Neutrino Physics Research · Dark Matter and Cosmic Phenomena
