English

Reactor Rate Modulation oscillation analysis with two detectors in Double Chooz

High Energy Physics - Experiment 2021-02-09 v2 Instrumentation and Detectors

Abstract

A θ13\theta_{13} oscillation analysis based on the observed antineutrino rates at the Double Chooz far and near detectors for different reactor power conditions is presented. This approach provides a so far unique simultaneous determination of θ13\theta_{13} and the total background rates without relying on any assumptions on the specific background contributions. The analysis comprises 865 days of data collected in both detectors with at least one reactor in operation. The oscillation results are enhanced by the use of 24.06 days (12.74 days) of reactor-off data in the far (near) detector. The analysis considers the \nue interactions up to a visible energy of 8.5 MeV, using the events at higher energies to build a cosmogenic background model considering fast-neutrons interactions and 9^{9}Li decays. The background-model-independent determination of the mixing angle yields sin2(2θ13)=0.094±0.017^2(2\theta_{13})=0.094\pm0.017, being the best-fit total background rates fully consistent with the cosmogenic background model. A second oscillation analysis is also performed constraining the total background rates to the cosmogenic background estimates. While the central value is not significantly modified due to the consistency between the reactor-off data and the background estimates, the addition of the background model reduces the uncertainty on θ13\theta_{13} to 0.015. Along with the oscillation results, the normalization of the anti-neutrino rate is measured with a precision of 0.86\%, reducing the 1.43\% uncertainty associated to the expectation.

Keywords

Cite

@article{arxiv.2007.13431,
  title  = {Reactor Rate Modulation oscillation analysis with two detectors in Double Chooz},
  author = {Double Chooz Collaboration and T. Abrahão and H. Almazan and J. C. dos Anjos and S. Appel and I. Bekman and T. J. C. Bezerra and L. Bezrukov and E. Blucher and T. Brugière and C. Buck and J. Busenitz and A. Cabrera and M. Cerrada and E. Chauveau and P. Chimenti and J. V. Dawson and Z. Djurcic and A. Etenko and H. Furuta and I. Gil-Botella and L. F. G. Gonzalez and M. C. Goodman and T. Hara and D. Hellwig and A. Hourlier and M. Ishitsuka and J. Jochum and C. Jollet and K. Kale and M. Kaneda and T. Kawasaki and E. Kemp and H. de Kerret and D. Kryn and M. Kuze and T. Lachenmaier and C. E. Lane and T. Lasserre and C. Lastoria and D. Lhuillier and H. P. Lima and M. Lindner and J. M. López-Castaño and J. M. LoSecco and B. Lubsandorzhiev and J. Maeda and C. Mariani and J. Maricic and J. Martino and T. Matsubara and G. Mention and A. Meregaglia and T. Miletic and R. Milincic and A. Minotti and D. Navas-Nicolás and P. Novella and L. Oberauer and M. Obolensky and A. Onillon and A. Oralbaev and C. Palomares and I. M. Pepe and G. Pronost and J. Reichenbacher and B. Reinhold and S. Schönert and S. Schoppmann and R. Sharankova and V. Sibille and V. Sinev and M. Skorokhvatov and P. Soldin and A. Stahl and I. Stancu and L. F. F. Stokes and F. Suekane and S. Sukhotin and T. Sumiyoshi and Y. Sun and B. Viaud and M. Vivier and S. Wagner and C. Wiebusch and G. Yang and F. Yermia},
  journal= {arXiv preprint arXiv:2007.13431},
  year   = {2021}
}
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