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Background decomposition of the CONUS+ run 1 data

N. Ackermann, H. Bonet, C. Buck, J. Hakenmüller, G. Heusser, M. Lindner, W. Maneschg, S. Mertens, K. Ni, D. Piani, M. Rank, T. Rink, E. Sánchez García, I. Stalder, H. Strecker, J. Woenckhaus

physics.ins-detarXiv:2608.12065

Abstract

The CONUS+ experiment is measuring the coherent elastic neutrino nucleus scattering (CEνNS) process using reactor anti-neutrinos as a source and four low energy threshold point-contact high-purity germanium spectrometers for their detection. It achieved the first measurement of coherent neutrino scattering at a nuclear reactor in run 1 of the experiment with a detection energy threshold of 160 eVee. This work presents the decomposition of the background spectra of the three detectors used in the run 1 analysis and the development of the corresponding background model with Geant4-based Monte Carlo simulations. The background model is used as the underlying input for the likelihood fit of the analysis. It is shown that reactor-correlated backgrounds are subdominant in all energy regions, specifically in the region of interest for CEνNS searches below 350 eVee where their contribution is one order of magnitude below the expected CEνNS signal. Furthermore, cosmic ray muons and neutrons are identified as the dominant background source below 1 keVee contributing approximately 75 - 90 \% of the recorded background rate. The final background model predicts an average rate of (47.5 3.2) d-1 kg-1 in reactor on measurement in the energy region between [0.4, 1.0] keVee, which is in excellent agreement with the average measured value of (48.0 0.6) d-1 kg-1. Similar agreement is found in all energy regions of both reactor on and off measurements.

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