English

Radiogenic backgrounds in the NEXT double beta decay experiment

Instrumentation and Detectors 2019-10-28 v3 High Energy Physics - Experiment

Abstract

Natural radioactivity represents one of the main backgrounds in the search for neutrinoless double beta decay. Within the NEXT physics program, the radioactivity-induced backgrounds are measured with the NEXT-White detector. Data from 37.9 days of low-background operations at the Laboratorio Subterr\'aneo de Canfranc with xenon depleted in 136^{136}Xe are analyzed to derive a total background rate of (0.84±\pm0.02) mHz above 1000 keV. The comparison of data samples with and without the use of the radon abatement system demonstrates that the contribution of airborne-Rn is negligible. A radiogenic background model is built upon the extensive radiopurity screening campaign conducted by the NEXT Collaboration. A spectral fit to this model yields the specific contributions of 60^{60}Co, 40^{40}K, 214^{214}Bi and 208^{208}Tl to the total background rate, as well as their location in the detector volumes. The results are used to evaluate the impact of the radiogenic backgrounds in the double beta decay analyses, after the application of topological cuts that reduce the total rate to (0.25±\pm0.01) mHz. Based on the best-fit background model, the NEXT-White median sensitivity to the two-neutrino double beta decay is found to be 3.5σ\sigma after 1 year of data taking. The background measurement in a Qββ±_{\beta\beta}\pm100 keV energy window validates the best-fit background model also for the neutrinoless double beta decay search with NEXT-100. Only one event is found, while the model expectation is (0.75±\pm0.12) events.

Keywords

Cite

@article{arxiv.1905.13625,
  title  = {Radiogenic backgrounds in the NEXT double beta decay experiment},
  author = {NEXT Collaboration and P. Novella and B. Palmeiro and M. Sorel and A. Usón and P. Ferrario and J. J. Gómez-Cadenas and C. Adams and V. Álvarez and L. Arazi and I. J. Arnquist and C. D. R Azevedo and K. Bailey and F. Ballester and J. M. Benlloch-Rodríguez and F. I. G. M. Borges and N. Byrnes and S. Cárcel and J. V. Carrión and S. Cebrián and E. Church and C. A. N. Conde and T. Contreras and G. Díaz López and J. Díaz and M. Diesburg and J. Escada and R. Esteve and R. Felkai and A. F. M. Fernandes and L. M. P. Fernandes and A. L. Ferreira and E. D. C. Freitas and J. Generowicz and S. Ghosh and A. Goldschmidt and D. González-Díaz and R. Guenette and R. M. Gutiérrez and J. Haefner and K. Hafidi and J. Hauptman and C. A. O. Henriques and J. A. Hernando Morata and P. Herrero and V. Herrero and Y. Ifergan and S. Johnston and B. J. P. Jones and M. Kekic and L. Labarga and A. Laing and P. Lebrun and N. López-March and M. Losada and R. D. P. Mano and J. Martín-Albo and A. Martínez and G. Martínez-Lema and A. D. McDonald and F. Monrabal and C. M. B. Monteiro and F. J. Mora and J. Muñoz Vidal and D. R. Nygren and A. Para and J. Pérez and F. Psihas and M. Querol and J. Renner and J. Repond and S. Riordan and L. Ripoll and Y. Rodríguez García and J. Rodríguez and L. Rogers and B. Romeo and C. Romo-Luque and F. P. Santos and J. M. F. dos Santos and A. Simón and C. Sofka and T. Stiegler and J. F. Toledo and J. Torrent and J. F. C. A. Veloso and R. Webb and R. Weiss-Babai and J. T. White and K. Woodruff and N. Yahlali},
  journal= {arXiv preprint arXiv:1905.13625},
  year   = {2019}
}
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