Low background measurement in CANDLES-III for studying the neutrino-less double beta decay of $^{48}$Ca
S. Ajimura, W.M. Chan, K. Ichimura, T. Ishikawa, K. Kanagawa, B.T., Khai, T. Kishimoto, H. Kino, T. Maeda, K. Matsuoka, N. Nakatani, M. Nomachi,, M. Saka, K. Seki, Y. Takemoto, Y. Takihira, D. Tanaka, M. Tanaka, K. Tetsuno,, V.T.T. Trang, M. Tsuzuki, S. Umehara, K. Akutagawa

TL;DR
This study demonstrates a low-background measurement setup with the CANDLES-III detector to search for neutrino-less double beta decay of $^{48}$Ca, achieving a background rate suitable for future sensitive experiments.
Contribution
The paper presents the first low-background measurement of a Ca-based detector for neutrino-less double beta decay, validating background estimation methods and detector feasibility.
Findings
Background rate of ~10$^{-3}$ events/keV/yr/(kg of $^{nat.}$Ca) achieved
Effective reduction of internal radioactive impurities through pulse shape analysis
Good agreement between measured and simulated background rates
Abstract
We developed a CANDLES-III system to study the neutrino-less double beta (0) decay of Ca. The proposed system employs 96 CaF scintillation crystals (305 kg) with natural Ca (Ca) isotope which corresponds 350\,g of Ca. External backgrounds were rejected using a 4 active shield of a liquid scintillator surrounding the CaF crystals. The internal backgrounds caused by the radioactive impurities within the CaF crystals can be reduced effectively through analysis of the signal pulse shape. We analyzed the data obtained in the Kamioka underground for a live-time of 130.4\,days to evaluate the feasibility of the low background measurement with the CANDLES-III detector. Using Monte Carlo simulations, we estimated the background rate from the radioactive impurities in the CaF crystals and the rate of high energy -rays…
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