Final results of Borexino on CNO solar neutrinos
D. Basilico, G. Bellini, J. Benziger, R. Biondi, B. Caccianiga, F., Calaprice, A. Caminata, A. Chepurnov, D. D'Angelo, A. Derbin, A. Di Giacinto,, V. Di Marcello, X.F. Ding, A. Di Ludovico, L. Di Noto, I. Drachnev, D., Franco, C. Galbiati, C. Ghiano, M. Giammarchi, A. Goretti

TL;DR
Borexino has achieved the first measurement of CNO solar neutrinos using a novel directional Cherenkov light method, providing more precise flux estimates and confirming high metallicity solar models.
Contribution
This work introduces the Correlated Integrated Directionality (CID) method to measure CNO neutrinos, independent of spectral analysis and external contamination constraints.
Findings
CNO neutrinos detected with >5σ significance.
CNO flux measurement consistent with high metallicity solar models.
Directional analysis enhances neutrino detection capabilities.
Abstract
We report the first measurement of CNO solar neutrinos by Borexino that uses the Correlated Integrated Directionality (CID) method, exploiting the sub-dominant Cherenkov light in the liquid scintillator detector. The directional information of the solar origin of the neutrinos is preserved by the fast Cherenkov photons from the neutrino scattered electrons, and is used to discriminate between signal and background. The directional information is independent from the spectral information on which the previous CNO solar neutrino measurements by Borexino were based. While the CNO spectral analysis could only be applied on the Phase-III dataset, the directional analysis can use the complete Borexino data taking period from 2007 to 2021. The absence of CNO neutrinos has been rejected with >5{\sigma} credible level using the Bayesian statistics. The directional CNO measurement is obtained…
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