Estimating amplitude of matter density fluctuations in solar and supernova models using neutrino flavor evolution
Caroline Laber-Smith, Hansen Torres, Lily Newkirk, Dhriti Rathod, A. Baha Balantekin, Amol V. Patwardhan
astro-ph.HE, hep-ph, nucl-th
Submitted: 2026-07-30
Code: https://github.com/yejingxin/minAone
License: http://creativecommons.org/licenses/by/4.0/
The gist: Neutrinos can undergo substantial flavor evolution between their production in astrophysical sources-such as the Sun and core-collapse supernovae-and their subsequent detection in terrestrial
Terminology
Abstract
Neutrinos can undergo substantial flavor evolution between their production in astrophysical sources-such as the Sun and core-collapse supernovae-and their subsequent detection in terrestrial detectors. This flavor evolution is strongly influenced by the environment that the neutrinos interact with, making them useful astrophysical messengers capable of potentially carrying information about the properties of the source wherein they are produced. In this work, we apply the framework of statistical data assimilation (SDA) in order to ascertain the extent to which a neutrino signal at detection may contain information about matter density fluctuations along their path from the source. Using simplified models of neutrino flavor evolution and propagation in the sun and in a core-collapse supernova (CCSN), we find that the SDA method is able to extract information about the amplitude of density fluctuations in both the solar and CCSN scenarios, with the method showing relatively greater reliability in the solar neutrino case. Nonetheless, even in the CCSN neutrino model, the method proved effective at high fluctuation amplitudes
Sources
- Solar Models and Solar Neutrinos: Current Status
- Supernova Neutrinos: Production, Oscillations and Detection
- Measurement of the rate of nu_e + d --> p + p + e^- interactions produced by 8B solar neutrinos at the Sudbury Neutrino Observatory
- Measurement of Day and Night Neutrino Energy Spectra at SNO and Constraints on Neutrino Mixing Parameters
- Direct Evidence for Neutrino Flavor Transformation from Neutral-Current Interactions in the Sudbury Neutrino Observatory
- Measurement of the Total Active 8B Solar Neutrino Flux at the Sudbury Neutrino Observatory with Enhanced Neutral Current Sensitivity
- Independent Measurement of the Total Active 8B Solar Neutrino Flux Using an Array of 3He Proportional Counters at the Sudbury Neutrino Observatory
- Combined Analysis of all Three Phases of Solar Neutrino Data from the Sudbury Neutrino Observatory
- The Sudbury Neutrino Observatory
- First real time detection of Be7 solar neutrinos by Borexino
- Measurement of the solar 8B neutrino rate with a liquid scintillator target and 3 MeV energy threshold in the Borexino detector
- First Directional Measurement of sub-MeV Solar Neutrinos with Borexino
- Improved measurement of solar neutrinos from the Carbon-Nitrogen-Oxygen cycle by Borexino and its implications for the Standard Solar Model
- Final results of Borexino on CNO solar neutrinos
- Measurement of the 8B Solar Neutrino Flux with the KamLAND Liquid Scintillator Detector
- 7Be Solar Neutrino Measurement with KamLAND
- Collective neutrino flavor conversion: Recent developments
- New Developments in Flavor Evolution of a Dense Neutrino Gas
- Neutrino Flavor Conversions in High-Density Astrophysical and Cosmological Environments
- Fast Flavor Transformations
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