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Model of the Response Function of CUORE Bolometers

ISBN-13: 9789401778626 / Angielski / Miękka / 2016 / 107 str.

Marco Vignati
Model of the Response Function of CUORE Bolometers Marco Vignati 9789401778626 Springer - książkaWidoczna okładka, to zdjęcie poglądowe, a rzeczywista szata graficzna może różnić się od prezentowanej.

Model of the Response Function of CUORE Bolometers

ISBN-13: 9789401778626 / Angielski / Miękka / 2016 / 107 str.

Marco Vignati
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In addition to providing a model explaining the spurious signals of the bolometric detectors in the Cryogenic Underground Observatory for Rare Events (CUORE) experiment, this volume also shows how to improve its detector operation and data analysis.

Kategorie:
Nauka, Fizyka
Kategorie BISAC:
Science > Fizyka jądrowa
Science > Weights & Measures
Technology & Engineering > Measurement
Wydawca:
Springer
Seria wydawnicza:
Springer Theses: Recognizing Outstanding Ph.D. Research
Język:
Angielski
ISBN-13:
9789401778626
Rok wydania:
2016
Wydanie:
Softcover Repri
Numer serii:
000408259
Ilość stron:
107
Waga:
0.18 kg
Wymiary:
23.39 x 15.6 x 0.64
Oprawa:
Miękka
Wolumenów:
01
Dodatkowe informacje:
Wydanie ilustrowane

Foreword
Acknowledgements

1 Neutrino masses and double beta decay
1.1 Oscillations 1.2 Masses 1.3 Double beta decay 1.3.1 Nuclear matrix elements 1.4 Experimental searches for neutrinoless double beta decay 1.4.1 Past and present experiments 1.4.2 Future experiments

2 TeO2 bolometric detectors for 0_DBD search
2.1 Bolometric detectors 2.1.1 The energy absorber 2.1.2 The choice of TeO2  2.1.3 The sensor 2.1.4 NTD-Ge thermistors 2.2 Bolometer operation 2.3 Arrays of TeO2 bolometers 2.4 Cryogenic setups 2.5 Signal readout 2.5.1 Measurement of the static resistance 2.6 Detector noise 2.7 CUORICINO and CUORE

3 Model of the response function of CUORE bolometers
3.1 The CCVR run 3.2 The Model 3.2.1 Thermistor model 3.2.2 Biasing circuit 3.2.3 Bessel filter 3.2.4 Thermal model 3.2.5 Simplified model without temperature dependences 3.2.6 Fit to data 3.2.7 Response function simulation 3.2.8 Amplitude dependence on the working temperature 3.2.9 Extraction of RS from the relationship between amplitude and baseline

4 Thermal response analysis
4.1 Data analysis procedure 4.2 The Thermal Response algorithm 4.3 Check of the TR algorithm on MonteCarlo data 4.4 Data analysis 4.4.1 Calibration 4.5 Residual drift in time 4.6 Sources of systematic errors 4.6.1 Choice of the derivative algorithm 4.6.2 Error on the biasing and read-out circuits parameters

5 Thermal response analysis on the Three Towers detector
5.1 The Three Towers detector 5.2 Measurements of model parameters 5.2.1 Measurement of V G RS and VS  5.2.2 Measurement of G/GS  5.2.3 Measurement of RL  5.2.4 Measurement of VBGS  5.2.5 Measurement of cp  5.3 Results on calibration data 5.4 Results on background data 5.5 Future developments

6. Conclusions

Appendix A Thermal response analysis on the CCVR detector

Appendix B Precision measurements on the Three Towers detector

Marco Vignati received his Master Degree in Physics from the Università di Roma - La Sapienza in June 2004 with final mark 110/110 cum laude. His degree thesis was entitled “CP asymmetry measurement within b→s transitions with the BaBar experiment” and his supervisors were Prof. Fernando Ferroni and Dr. Gianluca Cavoto. In January 2010 he received his Ph.D. in Physics from the same University under the supervision of Prof. Fernando Ferroni.

The neutrino is probably the most elusive elementary particle discovered so far. Its mass is very small and still unknown, and it is considered a key quantity in many theories beyond the Standard Model of particle physics. The smallness of the mass could be explained if neutrinos are, unlike all other particles, equal to their own antiparticles, thus following the conjecture of E. Majorana.

The double beta decay without emission of neutrinos is a nuclear process that can happen only if the neutrino is a Majorana particle. Observation of this decay would therefore necessarily imply that neutrinos are Majorana particles and would set the mass scale, a breakthrough in our understanding of nature.

The CUORE experiment will search for the neutrinoless double beta decay in 130Te, using 1 ton of TeO2 bolometric detectors. Bolometers are calorimeters that operate at cryogenic temperatures, able to measure the temperature rise produced by the energy release of an impinging particle. They feature good resolution and low background, making them excellent detectors to search for rare decays.

The performances of the experiment are currently limited by temperature instabilities of the bolometers and by a poor understanding of their data. Mea­suring the energy deposited by a particle, in fact, is complicated and the shape of the signal depends on the energy.

In this thesis a model of the signal of TeO2 bolometers is developed. It is able to explain the origin of the unwanted features that would limit the performances of CUORE. The application of the model to data from test bolometers led to great improvements of the results in terms of energy resolution, energy calibration, and signal shape discrimination.

This thesis has been awarded at the Department of Physics, Universita di Roma - La Sapienza, Italy.
With a Foreword by Professor Fernando Ferroni.



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