Comprehensive geoneutrino analysis with Borexino
Clicks: 213
ID: 273649
2020
Article Quality & Performance Metrics
Overall Quality
Improving Quality
0.0
/100
Combines engagement data with AI-assessed academic quality
Reader Engagement
Emerging Content
3.3
/100
11 views
11 readers
Trending
AI Quality Assessment
Not analyzed
Abstract
This paper presents a comprehensive geoneutrino measurement using the Borexino detector, located at Laboratori Nazionali del Gran Sasso (LNGS) in Italy. The analysis is the result of 3262.74 days of data between December 2007 and April 2019. The paper describes improved analysis techniques and optimized data selection, which includes enlarged fiducial volume and sophisticated cosmogenic veto. The reported exposure of (1.29±0.05)×1032 protons ×year represents an increase by a factor of two over a previous Borexino analysis reported in 2015. By observing 52.6−8.6+9.4(stat)−2.1+2.7(sys) geoneutrinos (68% interval) from U238 and Th232, a geoneutrino signal of 47.0−7.7+8.4(stat)−1.9+2.4(sys) TNU with −17.2+18.3% total precision was obtained. This result assumes the same Th/U mass ratio as found in chondritic CI meteorites but compatible results were found when contributions from U238 and Th232 were both fit as free parameters. Antineutrino background from reactors is fit unconstrained and found compatible with the expectations. The null-hypothesis of observing a geoneutrino signal from the mantle is excluded at a 99.0% C.L. when exploiting detailed knowledge of the local crust near the experimental site. Measured mantle signal of 21.2−9.0+9.5(stat)−0.9+1.1(sys) TNU corresponds to the production of a radiogenic heat of 24.6−10.4+11.1 TW (68% interval) from U238 and Th232 in the mantle. Assuming 18% contribution of K40 in the mantle and 8.1−1.4+1.9 TW of total radiogenic heat of the lithosphere, the Borexino estimate of the total radiogenic heat of the Earth is 38.2−12.7+13.6 TW, which corresponds to the convective Urey ratio of 0.78−0.28+0.41. These values are compatible with different geological predictions, however there is a ∼2.4σ tension with those Earth models which predict the lowest concentration of heat-producing elements in the mantle. In addition, by constraining the number of expected reactor antineutrino events, the existence of a hypothetical georeactor at the center of the Earth having power greater than 2.4 TW is excluded at 95% C.L. Particular attention is given to the description of all analysis details which should be of interest for the next generation of geoneutrino measurements using liquid scintillator detectors.
Abstract Quality Issue:
This abstract appears to be incomplete or contains metadata (319 words).
Try re-searching for a better abstract.
| Reference Key |
collaboration2020physicalcomprehensive
Use this key to autocite in the manuscript while using
SciMatic Manuscript Manager or Thesis Manager
|
|---|---|
| Authors | M. Agostini,K. Altenmüller,S. Appel,V. Atroshchenko,Z. Bagdasarian,D. Basilico,G. Bellini,J. Benziger,D. Bick,G. Bonfini,D. Bravo,B. Caccianiga,F. Calaprice,A. Caminata,L. Cappelli,P. Cavalcante,F. Cavanna,A. Chepurnov,K. Choi,D. D’Angelo,S. Davini,A. Derbin,A. Di Giacinto,V. Di Marcello,X. F. Ding,A. Di Ludovico,L. Di Noto,I. Drachnev,G. Fiorentini,A. Formozov,D. Franco,F. Gabriele,C. Galbiati,M. Gschwender,C. Ghiano,M. Giammarchi,A. Goretti,M. Gromov,D. Guffanti,C. Hagner,E. Hungerford,Aldo Ianni,Andrea Ianni,A. Jany,D. Jeschke,S. Kumaran,V. Kobychev,G. Korga,T. Lachenmaier,T. Lasserre,M. Laubenstein,E. Litvinovich,P. Lombardi,I. Lomskaya,L. Ludhova,G. Lukyanchenko,I. Machulin,F. Mantovani,G. Manuzio,S. Marcocci,J. Maricic,J. Martyn,E. Meroni,M. Meyer,L. Miramonti,M. Misiaszek,M. Montuschi,V. Muratova,B. Neumair,M. Nieslony,L. Oberauer,A. Onillon,V. Orekhov,F. Ortica,M. Pallavicini,L. Papp,Ö. Penek,L. Pietrofaccia,N. Pilipenko,A. Pocar,G. Raikov,M. T. Ranalli,G. Ranucci,A. Razeto,A. Re,M. Redchuk,B. Ricci,A. Romani,N. Rossi,S. Rottenanger,S. Schönert,D. Semenov,M. Skorokhvatov,O. Smirnov,A. Sotnikov,V. Strati,Y. Suvorov,R. Tartaglia,G. Testera,J. Thurn,E. Unzhakov,A. Vishneva,M. Vivier,R. B. Vogelaar,F. von Feilitzsch,M. Wojcik,M. Wurm,O. Zaimidoroga,S. Zavatarelli,K. Zuber,G. Zuzel,Borexino Collaboration;M. Agostini;K. Altenmüller;S. Appel;V. Atroshchenko;Z. Bagdasarian;D. Basilico;G. Bellini;J. Benziger;D. Bick;G. Bonfini;D. Bravo;B. Caccianiga;F. Calaprice;A. Caminata;L. Cappelli;P. Cavalcante;F. Cavanna;A. Chepurnov;K. Choi;D. D’Angelo;S. Davini;A. Derbin;A. Di Giacinto;V. Di Marcello;X. F. Ding;A. Di Ludovico;L. Di Noto;I. Drachnev;G. Fiorentini;A. Formozov;D. Franco;F. Gabriele;C. Galbiati;M. Gschwender;C. Ghiano;M. Giammarchi;A. Goretti;M. Gromov;D. Guffanti;C. Hagner;E. Hungerford;Aldo Ianni;Andrea Ianni;A. Jany;D. Jeschke;S. Kumaran;V. Kobychev;G. Korga;T. Lachenmaier;T. Lasserre;M. Laubenstein;E. Litvinovich;P. Lombardi;I. Lomskaya;L. Ludhova;G. Lukyanchenko;I. Machulin;F. Mantovani;G. Manuzio;S. Marcocci;J. Maricic;J. Martyn;E. Meroni;M. Meyer;L. Miramonti;M. Misiaszek;M. Montuschi;V. Muratova;B. Neumair;M. Nieslony;L. Oberauer;A. Onillon;V. Orekhov;F. Ortica;M. Pallavicini;L. Papp;Ö. Penek;L. Pietrofaccia;N. Pilipenko;A. Pocar;G. Raikov;M. T. Ranalli;G. Ranucci;A. Razeto;A. Re;M. Redchuk;B. Ricci;A. Romani;N. Rossi;S. Rottenanger;S. Schönert;D. Semenov;M. Skorokhvatov;O. Smirnov;A. Sotnikov;V. Strati;Y. Suvorov;R. Tartaglia;G. Testera;J. Thurn;E. Unzhakov;A. Vishneva;M. Vivier;R. B. Vogelaar;F. von Feilitzsch;M. Wojcik;M. Wurm;O. Zaimidoroga;S. Zavatarelli;K. Zuber;G. Zuzel;Borexino Collaboration; |
| Journal | physical review d |
| Year | 2020 |
| DOI |
10.1103/physrevd.101.012009
|
| URL | |
| Keywords |
Citations
No citations found. To add a citation, contact the admin at info@scimatic.org
Comments
No comments yet. Be the first to comment on this article.