Spectrometry of the Earth using Neutrino Oscillations
arXiv:1502.04930 · doi:10.1038/srep15225
Abstract
The unknown constituents of the interior of our home planet have provoked the human imagination and driven scientific exploration. We herein demonstrate that large neutrino detectors could be used in the near future to significantly improve our understanding of the Earth's inner chemical composition. Neutrinos, which are naturally produced in the atmosphere, traverse the Earth and undergo oscillations that depend on the Earth's electron density. The Earth's chemical composition can be determined by combining observations from large neutrino detectors with seismic measurements of the Earth's matter density. We present a method that will allow us to perform a measurement that can distinguish between composition models of the outer core. We show that the next-generation large-volume neutrino detectors can provide sufficient sensitivity to reject outer core models with large hydrogen content and thereby demonstrate the potential of this novel method. In the future, dedicated instruments could be capable of distinguishing between specific Earth composition models and thereby reshape our understanding of the inner Earth in previously unimagined ways.
3 figures, 3 supplementary figures
References in corpus (14)
- Observation of electron-antineutrino disappearance at Daya Bay
- Evidence for High-Energy Extraterrestrial Neutrinos at the IceCube Detector
- Status of three-neutrino oscillation parameters, circa 2013
- Improvement of low energy atmospheric neutrino flux calculation using the JAM nuclear interaction model
- Mass hierarchy, 2-3 mixing and CP-phase with Huge Atmospheric Neutrino Detectors
- A Long Baseline Neutrino Oscillation Experiment Using J-PARC Neutrino Beam and Hyper-Kamiokande
- Overview of the Jiangmen Underground Neutrino Observatory (JUNO)
- Radiography of the Earth's Core and Mantle with Atmospheric Neutrinos
- Letter of Intent: The Precision IceCube Next Generation Upgrade (PINGU)
- Neutrino tomography - Learning about the Earth's interior using the propagation of neutrinos
- Calculation of oscillation probabilities of atmospheric neutrinos using nuCraft
- PINGU and the neutrino mass hierarchy: Statistical and systematic aspects
- Exploring the Earth matter effect with atmospheric neutrinos in ice
- The ORCA Option for KM3NeT
Cited by in corpus (23)
- Letter of Intent for KM3NeT 2.0
- PINGU: A Vision for Neutrino and Particle Physics at the South Pole
- Measurement of Atmospheric Neutrino Mixing with Improved IceCube DeepCore Calibration and Data Processing
- Atmospheric Neutrino Oscillations for Earth Tomography
- DUNE atmospheric neutrinos: Earth Tomography
- Neutrino Oscillations through the Earth's Core
- Neutrino oscillation tomography of the Earth with KM3NeT-ORCA
- Probing the Local Dark Matter Halo with Neutrino Oscillations
- GIGJ: a crustal gravity model of the Guangdong Province for predicting the geoneutrino signal at the JUNO experiment
- Validating the Earth's Core using Atmospheric Neutrinos with ICAL at INO
- Locating the Core-Mantle Boundary using Oscillations of Atmospheric Neutrinos
- Neutrino Tomography of the Earth with ORCA Detector
- On the flavor/mass dichotomy for mixed neutrinos: a phenomenologically motivated analysis based on lepton charge conservation in neutron decay
- Earth tomography with supernova neutrinos at future neutrino detectors
- Oscillation tomografy study of Earth's composition and density with atmospheric neutrinos
- Enhanced Photon Traps for Hyper-Kamiokande
- Demonstrating the ability of IceCube DeepCore to probe Earth's interior with atmospheric neutrino oscillations
- Determining the Density of the Sun with Neutrinos
- Propagation of GeV neutrinos through Earth
- Tomography by neutrino pair beam
- Parametric Resonance in Neutrino Oscillation: A Guide to Control the Effects of Inhomogeneous Matter Density
- Status and Perspectives of Neutrino Physics
- Interplay of non-standard interactions and Earth's composition in atmospheric neutrino oscillations