We report results from searches for new physics with low-energy electronic recoil data recorded with the XENON1T detector. With an exposure of 0.65 tonne-years and an unprecedentedly low background rate of 76±2ₛₜₐₜ  events/(tonne×year×keV) between 1 and 30 keV, the data enable one of the most sensitive searches for solar axions, an enhanced neutrino magnetic moment using solar neutrinos, and bosonic dark matter. An excess over known backgrounds is observed at low energies and most prominent between 2 and 3 keV. The solar axion model has a 3.4𝜎 significance, and a three-dimensional 90% confidence surface is reported for axion couplings to electrons, photons, and nucleons. This surface is inscribed in the cuboid defined by 𝑔ₐₑ<3.8×10⁻¹², 𝑔ₐₑ𝑔ₐₙᵉᶠᶠ<4.8×10⁻¹⁸, and 𝑔ₐₑ𝑔ₐᵧ<7.7×10⁻²²  GeV⁻¹, and excludes either 𝑔ₐₑ=0 or 𝑔ₐₑ𝑔ₐᵧ=𝑔ₐₑ𝑔ₐₙᵉᶠᶠ=0. The neutrino magnetic moment signal is similarly favored over background at 3.2𝜎, and a confidence interval of μᵥ∈(1.4,2.9)×10⁻¹¹  𝜇𝐵 (90% C.L.) is reported. Both results are in strong tension with stellar constraints. The excess can also be explained by 𝛽 decays of tritium at 3.2𝜎 significance with a corresponding tritium concentration in xenon of (6.2±2.0)×10⁻²⁵  mol/mol. Such a trace amount can neither be confirmed nor excluded with current knowledge of its production and reduction mechanisms. The significances of the solar axion and neutrino magnetic moment hypotheses are decreased to 2.0𝜎 and 0.9𝜎, respectively, if an unconstrained tritium component is included in the fitting. With respect to bosonic dark matter, the excess favors a monoenergetic peak at (2.3±0.2)  keV (68% C.L.) with a 3.0𝜎 global (4.0𝜎 local) significance over background. This analysis sets the most restrictive direct constraints to date on pseudoscalar and vector bosonic dark matter for most masses between 1 and 210  keV/c². We also consider the possibility that ³⁷Ar may be present in the detector, yielding a 2.82 keV peak from electron capture. Contrary to tritium, the ³⁷Ar concentration can be tightly constrained and is found to be negligible.

Excess electronic recoil events in XENON1T / Aprile, E., Aalbers, J., Agostini, F., Alfonsi, M., Althueser, L., Amaro, F.D., Antochi, V.C., Angelino, E., Angevaare, J.R., Arneodo, F., Barge, D., Baudis, L., Bauermeister, B., Bellagamba, L., Benabderrahmane, M.L., Berger, T., Brown, A., Brown, E., Bruenner, S., Bruno, G., et al.. - In: PHYSICAL REVIEW D. - ISSN 2470-0010. - 102:7(2020), pp. 1-26. [10.1103/PhysRevD.102.072004]

Excess electronic recoil events in XENON1T

Capelli, C.;
2020

Abstract

We report results from searches for new physics with low-energy electronic recoil data recorded with the XENON1T detector. With an exposure of 0.65 tonne-years and an unprecedentedly low background rate of 76±2ₛₜₐₜ  events/(tonne×year×keV) between 1 and 30 keV, the data enable one of the most sensitive searches for solar axions, an enhanced neutrino magnetic moment using solar neutrinos, and bosonic dark matter. An excess over known backgrounds is observed at low energies and most prominent between 2 and 3 keV. The solar axion model has a 3.4𝜎 significance, and a three-dimensional 90% confidence surface is reported for axion couplings to electrons, photons, and nucleons. This surface is inscribed in the cuboid defined by 𝑔ₐₑ<3.8×10⁻¹², 𝑔ₐₑ𝑔ₐₙᵉᶠᶠ<4.8×10⁻¹⁸, and 𝑔ₐₑ𝑔ₐᵧ<7.7×10⁻²²  GeV⁻¹, and excludes either 𝑔ₐₑ=0 or 𝑔ₐₑ𝑔ₐᵧ=𝑔ₐₑ𝑔ₐₙᵉᶠᶠ=0. The neutrino magnetic moment signal is similarly favored over background at 3.2𝜎, and a confidence interval of μᵥ∈(1.4,2.9)×10⁻¹¹  𝜇𝐵 (90% C.L.) is reported. Both results are in strong tension with stellar constraints. The excess can also be explained by 𝛽 decays of tritium at 3.2𝜎 significance with a corresponding tritium concentration in xenon of (6.2±2.0)×10⁻²⁵  mol/mol. Such a trace amount can neither be confirmed nor excluded with current knowledge of its production and reduction mechanisms. The significances of the solar axion and neutrino magnetic moment hypotheses are decreased to 2.0𝜎 and 0.9𝜎, respectively, if an unconstrained tritium component is included in the fitting. With respect to bosonic dark matter, the excess favors a monoenergetic peak at (2.3±0.2)  keV (68% C.L.) with a 3.0𝜎 global (4.0𝜎 local) significance over background. This analysis sets the most restrictive direct constraints to date on pseudoscalar and vector bosonic dark matter for most masses between 1 and 210  keV/c². We also consider the possibility that ³⁷Ar may be present in the detector, yielding a 2.82 keV peak from electron capture. Contrary to tritium, the ³⁷Ar concentration can be tightly constrained and is found to be negligible.
2020
dark matter; direct detection; xenon; low-energy electronic recoils; axion
01 Pubblicazione su rivista::01a Articolo in rivista
Excess electronic recoil events in XENON1T / Aprile, E., Aalbers, J., Agostini, F., Alfonsi, M., Althueser, L., Amaro, F.D., Antochi, V.C., Angelino, E., Angevaare, J.R., Arneodo, F., Barge, D., Baudis, L., Bauermeister, B., Bellagamba, L., Benabderrahmane, M.L., Berger, T., Brown, A., Brown, E., Bruenner, S., Bruno, G., et al.. - In: PHYSICAL REVIEW D. - ISSN 2470-0010. - 102:7(2020), pp. 1-26. [10.1103/PhysRevD.102.072004]
File allegati a questo prodotto
File Dimensione Formato  
Aprile_Excess_2020.pdf

accesso aperto

Note: Articolo su rivista
Tipologia: Versione editoriale (versione pubblicata con il layout dell'editore)
Licenza: Creative commons
Dimensione 1.75 MB
Formato Adobe PDF
1.75 MB Adobe PDF

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/1773559
Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus 483
  • ???jsp.display-item.citation.isi??? 476
social impact