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Searches for physics beyond the SM at DANSS

Gorovtsov, Petr

Abstract

Parallel talk presented at the XXI International Workshop on Neutrino Telescopes - Padova 29 September - 3 October 2025 (https://agenda.infn.it/event/44606/) On behalf of the DANSS Collaboration Abstract: DANSS is a one cubic meter highly segmented solid scintillator detector. It consists of 2500 scintillator strips, covered with gadolinium loaded reflective coating and read out with SiPMs and PMTs via wavelength shifting fibers. DANSS is placed under a 3.1 GW industrial reactor at the Kalinin NPP (Russia) on a movable platform.In a search for Large Extra Dimensions (LED) the best fit point in a model with one large LED has a statistical significance of 2 standard deviations only. Therefore, no statistically significant evidence for LED was found. The established upper limits on the model parameters (the size of the extra dimension and the mass of the lightest neutrino) are the best in the world in some areas. They exclude a large fraction of parameters preferred by the LED interpretation of the Gallium anomaly and Reactor anomaly including the best fit points. The limits are based on the comparison of the Inverse beta decay spectra at 10.9 and 12.9 meters from the reactor core center. They do not depend on the assumptions about the reactor antineutrino spectrum.Searches for sterile neutrinos were updated using additional 1 million of neutrino events. Limits obtained in a model independent way exclude practically all sterile neutrino parameters preferred by the recent BEST results for below 5 eV.Using model predictions for the neutrino flux DANSS excludes practically the whole sterile neutrino parameter space preferred by the BEST experiment.The Inverse Beta Decay (IBD) spectrum dependence on the 239Pu fission fraction is presented. It agrees with the predictions of the Huber-Mueller model. Using this dependence, the ratio of cross sections for 235U and 239Pu was extracted. It also agrees with the Huber-Mueller model and is somewhat larger than in other experiments. The reactor power was measured using the IBD event rate during 7.5 years with a statistical accuracy of 1.0% in a week and with the relative systematic uncertainty of less than 0.8%. The fraction of the reactor antineutrino yield with energies above 10 MeV was measured. Such antineutrinos are important for searches of neutrino coherent scattering. Fission fractions of 239Pu and 235U during reactor campaigns were measured using a fit of the IBD positron spectra. Antineutrino spectra from 239Pu and 235U were reconstructed.

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DANSS in A336 Searches for physics beyond the SM at DANSS Petr Gorovtsov, UNIPD & INFN Padova On behalf of the DANSS collaboration 1 Motivation - there are several anomalies in neutrino physics โ€ขLSND & MiniBooNE result: ๐œˆ๐‘’in the ๐œˆ๐œ‡beam (6๐œŽ): ฮ”๐‘š2โˆผ0.2โˆ’1e๐‘‰2? โ€ขMicroBooNE does not confirm this anomaly โ€ขGallium anomaly (GA): deficit of ๐œˆevents in the calibration measurements in gallium experiments SAGE, GALLEX and BEST (5๐œŽ) โ€ขReactor Antineutrino Anomaly (RAA): deficit of าง๐œˆ๐‘’ from the reactors in comparison with theoretical predictions (2.8๐œŽ), tends to decrease 2 LSND, MiniBooNE, 29.05.2013, Annual Review of Nuclear and Particle Science vol 63 P. Arbatenko et al., (MicroBooNE), Phys. Rev. Lett. 130, 011801, 2023 V.V. Barinov et al, (BEST), Phys. Rev. Lett. 128, 232501, 2022 G. Mention et al, Phys. Rev. D 83, 073006, 2011 Possible explanations โ€ขSterile neutrinos: at short distances we can consider only oscillations to sterile state ๐‘ƒ าง๐œˆ๐‘’โ†’ าง๐œˆ๐‘’โ‰ˆ1 โˆ’sin22๐œƒ๐‘’๐‘’ sin 1.267ฮ”m41 2๐‘’๐‘‰2๐ฟ ๐‘š ๐ธ๐‘€๐‘’๐‘‰ โ€ขLarge Extra Dimensions (LED) (N. Arkaniโ€“Hamed, S. Dimopoulos, G. Dvali, Phys. Let. B, vol 429, issues 3-4, pages 263-272, 1998) โ€ขExtra dimensions renormalize Planckโ€™s mass: ๐‘€๐‘ƒ๐‘™ 2= ๐‘€๐‘ƒ๐‘™ โˆ—2+๐‘›๐‘Ž๐‘› โ€ข๐‘› โ‰ฅ2needed for Hierarchy problem but one dimension can be bigger than others. In this approach survival probability for (anti)neutrino: ๐‘ƒ าง๐œˆ๐‘’โ†’ าง๐œˆ๐‘’=ฯƒ๐‘–๐‘ˆ๐‘’๐‘– 2๐ด๐‘–2 3 โˆผ1๐‘’๐‘‰2 ๐ด๐‘–= 1โˆ’๐œ‹2 6๐‘š๐‘– 2๐‘Ž22exp ๐‘–๐‘š๐‘– 2๐ฟ 2๐ธ +2๐‘š๐‘– 2๐‘Ž2exp ๐‘–๐‘š๐‘– 2๐ฟ ๐ธเทexp ๐‘– ๐‘›2๐ฟ 2๐ธ๐‘Ž2 ๐‘›2,๐‘š๐‘Ž โ‰ช1 Kaluza-Klein towerAbsolute mass scale Size of the dominant dimension Detector of AntiNeutrino based on Solid Scintillator โ€ขDetector is placed under the reactor core at Kalinin NPP and consists of safe, nonflammable materials โ€ขThe goal is to scrutinize the sterile neutrino hypothesis (and other BSM models) โ€ขA movable platform โ†’ spectral ratio analysis not sensitive to detector efficiency and antineutrino spectrum โ€ขAntineutrinos are detected in the IBD reaction: โ€ขThe energy of antineutrino is determined by the energy of positron โˆผ5000๐‘’๐‘ฃ๐‘’๐‘›๐‘ก๐‘ /๐‘‘๐‘Ž๐‘ฆ Largest in the world antineutrino statistics, IBD is used เดฅ๐œˆ๐‘’+๐‘ โ†’ ๐‘›+๐‘’+ ๐ธ๐œˆ๐‘’โ‰ˆ๐ธ๐‘’++1.8๐‘€๐‘’๐‘‰ 4 Positron โ†’prompt signal Neutron โ†’delayed signal (For the Top and Bottom agreement see the DANSS poster) Design of the detector โ€ขShielding: muon veto, 8 cm of boron-doped polyethylene, 5 cm of lead, another 8 cm of borondoped polyethylene, and a 5 cm layer of copper โ€ข2500 scintillator strips coated with a gadoliniumcontaining layer for neutron capture. Light is collected with wavelength shifting fibers connected to SiPM and PMT โ€ขCurrently the detectorโ€™s upgrade is coming: new scintillation counters, more of sensitive volume, better light collection 5 Acquired positron spectra โ€ขOctober 2016 โ€“May 2025 โ€ข9.8ร—106events in [0.75โˆ’8]MeV โ€ขDANSS is moved once in 5-7 days in order to average the result by the fuel composition โ€ขPure positron kinetic energy (no annihilation gammas) โ€ข๐œ‡-induced background due to the veto inefficiency is 1.8% of the signal only 6 First precise measurement of reactor power with antineutrino โ€ขDetection rate: ๐‘‘2๐‘ ๐‘‘๐ธ๐œˆ๐‘‘๐‘ก =๐‘๐‘๐œŽ ๐ธ๐œˆ๐œ€ ๐ธ๐œˆ๐‘‘2๐œ™ ๐‘‘๐ธ๐œˆ๐‘‘๐‘ก 1 4๐œ‹๐ฟ2P(E๐œˆ,L) 7 =1 โ€ขUncertainty in flux models โ†’normalization to flux during 1 month in 2016 โ€ขCorrections applied: โ€ขChange of the efficiency due to dead channels amount (<3%) โ€ขVariation of the dead time due to VETO rate (1%) โ€ขThe fuel evolution (provided by KNPP) โ€ขExcellent agreement between DANSS and KNPP: 1.0%during 7 years โ€ขStatistical accuracy of each point is around 0.7% โ€ขAdditional systematic between KNPP and DANSS measurements is 0.79%only! 2-3 days/point 7 days/point I. Alekseev et al, (DANSS), Phys. Let. B, vol 866, 139575, 2025 2 weeks/point First measurement of fission fractions with antineutrino spectrum 8 โ€ขThe antineutrino spectrum is different for different isotopes โ€ขCorrection for efficiency, dead time and neighbouring reactors (0.6%) โ€ขFit doesnโ€™t include ๐ธ๐‘’+โˆˆ 3;5,5 ๐‘€๐‘’๐‘‰due to theoretical uncertainties โ€ข5th campaign is used to fix energy calibration and 238๐‘ˆand 241๐‘ƒ๐‘ขfractions (taken from KNPP) โ€ขStatistical error of IBD rate is 0.6% โ€ขาง๐œˆ๐‘’spectra for isotopes are taken from HM or KI model. DANSS shows that results depend weakly on the choice of the model. KNPP data is based on the solving diffusion equation for neutron flux โ€ขAgreement with KNPP is within 2.1%although two methods based on the completely different physical processes I. Alekseev et al, (DANSS), Phys. Let. B, vol 866, 139575, 2025 ๐œ’2๐œƒ,๐œ‚ = เท ๐‘๐‘–๐‘›๐‘  ๐‘…๐‘๐‘ก ๐‘œ๐‘๐‘  โˆ’๐‘…๐‘๐‘ก ๐‘๐‘Ÿ๐‘’(๐œƒ,๐œ‚) 2 ๐œŽ2 +ฯƒ๐‘๐‘–๐‘›๐‘  ๐‘…๐‘๐‘ก ๐‘œ๐‘๐‘  โˆ’๐‘…๐‘๐‘ก ๐‘๐‘Ÿ๐‘’; ๐‘…๐‘š๐‘๐‘ก ๐‘œ๐‘๐‘  โˆ’๐‘…๐‘š๐‘๐‘ก ๐‘๐‘Ÿ๐‘’ โ‹…๐‘Šโˆ’1 โ‹…๐‘…๐‘๐‘ก ๐‘œ๐‘๐‘  โˆ’๐‘…๐‘๐‘ก ๐‘๐‘Ÿ๐‘’ ๐‘…๐‘š๐‘๐‘ก ๐‘œ๐‘๐‘  โˆ’๐‘…๐‘š๐‘๐‘ก ๐‘๐‘Ÿ๐‘’ +เท ๐‘ ๐‘ฆ๐‘ ๐‘ก ๐œ‚โˆ’๐œ‚0 2 ๐œŽ๐œ‚ 2 โ€ขData taking in 2 positions ๐‘…๐‘๐‘ก =๐‘๐‘œ๐‘ก๐‘ก๐‘œ๐‘š/๐‘ก๐‘œ๐‘ โ€ขData taking in 3 positions ๐‘…๐‘š๐‘๐‘ก =๐‘š๐‘–๐‘‘๐‘‘๐‘™๐‘’/ ๐‘๐‘œ๐‘ก๐‘ก๐‘œ๐‘šโ‹…๐‘ก๐‘œ๐‘ ๐‘Šโ€“covariance matrix โ€ขPenalty term for systematics: relative efficiency, background, energy scale, distance to reactor core Oscillation analysis 9 โ€ขFor different points in parameter space ๐œƒspectra ratios ๐‘…were calculated โ€ข๐œƒ =(sin22๐œƒ๐‘’๐‘’;ฮ”๐‘š41 2)for sterile neutrino โ€ข๐œƒ =(๐‘Ž,๐‘š0)for LED searches โ€ข๐œ’2statistics is minimized over systematic parameters ๐œ‚ โ€ขGaussian CLs method or confidence intervals (Wilks theorem assumed) were used BackUp โ€ขLSND result with LED โ€ขProbability of appearance is very low 16 Mass ordering โ€ขFor the same ๐‘š0in different ordering values of ๐‘š1,๐‘š2,๐‘š3differ, hence, amplitudes are also different. They have different weights in the total probability 17 Survival probability: ๐‘ƒ๐‘’๐‘’ = เท ๐‘ˆ๐‘’๐‘– 2๐ด๐‘– 2 ๐‘ˆ๐‘’1 โˆผ0.8 ๐‘ˆ๐‘’2 โˆผ0.5 ๐‘ˆ๐‘’3 โˆผ0.1 Fission fractions 18 Fission fraction provided by KNPP Antineutrino spectra for different isotopes List of systematics โ€ข๐œ‚0nominal values โ€ข๐œŽ๐œ‚standard deviations 19 Bump in positron spectra โ€ขRatio of measured and predicted by HM spectra โ€ข3-5.5 MeV range is not included 20 bump Gaussian ๐ถ๐ฟ๐‘ method Significance of exclusion ๐ป1in comparison with ๐ป0without any suggestions on the structure of parameter space. ๐ป0is assumed to be true. โ€ข๐œ’1 2โˆ’๐œ’0 2(ฮ”๐‘‡)is distributed according to normal distribution with parameters determined from Asimov datasets. โ€ขConfidence level: ๐ถ๐ฟ๐‘ =1โˆ’๐‘1 1โˆ’๐‘0 21 Prediction of theory with experimental error Unfolding of the antineutrino spectrum 22 โ€ขUnfolding with SVD method