An Energy-dependent Electro-thermal Response Model of CUORE Cryogenic Calorimeter
Abstract
The Cryogenic Underground Observatory for Rare Events (CUORE) is the most sensitive experiment searching for neutrinoless double-beta decay () in . CUORE uses a cryogenic array of 988 TeO calorimeters operated at 10 mK with a total mass of 741 kg. To further increase the sensitivity, the detector response must be well understood. Here, we present a non-linear thermal model for the CUORE experiment on a detector-by-detector basis. We have examined both equilibrium and dynamic electro-thermal models of detectors by numerically fitting non-linear differential equations to the detector data of a subset of CUORE channels which are well characterized and representative of all channels. We demonstrate that the hot-electron effect and electric-field dependence of resistance in NTD-Ge thermistors alone are inadequate to describe our detectors' energy dependent pulse shapes. We introduce an empirical second-order correction factor in the exponential temperature dependence of the thermistor, which produces excellent agreement with energy-dependent pulse shape data up to 6 MeV. We also present a noise analysis using the fitted thermal parameters and show that the intrinsic thermal noise is negligible compared to the observed noise for our detectors.
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Cite
@article{arxiv.2205.04549,
title = {An Energy-dependent Electro-thermal Response Model of CUORE Cryogenic Calorimeter},
author = {CUORE Collaboration and D. Q. Adams and C. Alduino and K. Alfonso and F. T. Avignone and O. Azzolini and G. Bari and F. Bellini and G. Benato and M. Beretta and M. Biassoni and A. Branca and C. Brofferio and C. Bucci and J. Camilleri and A. Caminata and A. Campani and L. Canonica and X. G. Cao and S. Capelli and C. Capelli and L. Cappelli and L. Cardani and P. Carniti and N. Casali and E. Celi and D. Chiesa and M. Clemenza and S. Copello and O. Cremonesi and R. J. Creswick and A. D'Addabbo and I. Dafinei and F. Del Corso and S. Dell'Oro and S. Di Domizio and S. Di Lorenzo and V. Dompè and D. Q. Fang and G. Fantini and M. Faverzani and E. Ferri and F. Ferroni and E. Fiorini and M. A. Franceschi and S. J. Freedman and S. H. Fu and B. K. Fujikawa and S. Ghislandi and A. Giachero and A. Gianvecchio and L. Gironi and A. Giuliani and P. Gorla and C. Gotti and T. D. Gutierrez and K. Han and E. V. Hansen and K. M. Heeger and R. G. Huang and H. Z. Huang and J. Johnston and G. Keppel and Yu. G. Kolomensky and R. Kowalski and M. Li and R. Liu and L. Ma and Y. G. Ma and L. Marini and R. H. Maruyama and D. Mayer and Y. Mei and S. Morganti and T. Napolitano and M. Nastasi and J. Nikkel and C. Nones and E. B. Norman and A. Nucciotti and I. Nutini and T. O'Donnell and M. Olmi and J. L. Ouellet and S. Pagan and C. E. Pagliarone and L. Pagnanini and M. Pallavicini and L. Pattavina and M. Pavan and G. Pessina and V. Pettinacci and C. Pira and S. Pirro and S. Pozzi and E. Previtali and A. Puiu and S. Quitadamo and A. Ressa and C. Rosenfeld and S. Sangiorgio and B. Schmidt and N. D. Scielzo and V. Sharma and V. Singh and M. Sisti and D. Speller and P. T. Surukuchi and L. Taffarello and F. Terranova and C. Tomei and K. J. Vetter and M. Vignati and S. L. Wagaarachchi and B. S. Wang and B. Welliver and J. Wilson and K. Wilson and L. A. Winslow and S. Zimmermann and S. Zucchelli},
journal= {arXiv preprint arXiv:2205.04549},
year = {2022}
}
Comments
34 pages, 14 figures, 6 tables