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A 0νββ search using large scintillating crystal with metallic magnetic calorimeter : 섬광결정과 자기양자센서를 이용한 중성미자 미방출 이중베타붕괴 (0νββ) 탐사

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dc.contributor.advisor김선기-
dc.contributor.authorKim, Geon-Bo-
dc.date.accessioned2017-07-19T06:10:36Z-
dc.date.available2017-07-19T06:10:36Z-
dc.date.issued2016-02-
dc.identifier.other000000132810-
dc.identifier.urihttp://dcollection.snu.ac.kr:80/jsp/common/DcLoOrgPer.jsp?sItemId=000000132810-
dc.description학위논문(박사)--서울대학교 대학원 :자연과학대학 물리·천문학부,2016. 2. 김선기.-
dc.description.abstractObservations of neutrino oscillation phenomenon imply that neutrinos have non-zero masses and there is a mixing between weak and mass eigenstates. Mixing angles and square mass differences of mass eigenstates have been obtained from neutrino oscillation experiments with various baseline, but origin of neutrino masses (Dirac or Majorana) and their absolute mass scale remain as fundamental questions.
Search for the neutrinoless double beta decay (0νββ) is a key experiment to reveal Majorana nature of neutrinos. 0νββ is a very rare transition that two beta decays occur at the same time without neutrino emission, which is possible if the neutrinos are Majorana particles. Probability of this decays is proportional to square of effective Majorana neutrino mass, and extremely small masses of neutrinos result in very long half-life that makes it hard to be observed.
Low temperature detectors with large scintillating crystals are the promising detection technique for rare event search experiments because of its high energy resolution, low energy threshold, and particle discrimination performances. The AMoRE (Advanced Mo-based Rare process Experiment) project employs metallic magnetic calorimeters (MMCs) and large {\CMO} scintillating crystals for a 0νββ search of the 100Mo. It uses a simultaneous measurement scheme of heat and scintillation light signals at tens of millikelvin temperatures.
Overcoming of low thermal coupling between large dielectric crystals and MMCs by efficient athermal phonon collection using large gold film phonon collector provides significant improvement on detector performances. The detectors show better than 10 keV FWHM energy resolution at 2.6 MeV (close to the Q-value of 0νββ) and 20 σ separation power for alpha-induced background events with relatively fast rise-time of around 1~ms, which satisfies requirement for the zero-background experiment with tens of kg scale detectors.
In this thesis, detector development procedure based on the thermal model study and details on detector performances obtained from the characterization measurement are described. Also, test of 1.5 kg 40Ca100MoO4 detectors at an underground laboratory for AMoRE-pilot experiment and its preliminary results are discussed.
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dc.description.tableofcontents1 Introduction 1
1.1 Neutrinos 1
1.2 Neutrinoless double beta decay (0νββ) 4
1.2.1 Double Beta Decay 5
1.2.2 Neutrinoless double beta decay 5
1.2.3 Experimental sensitivity of 0νββ 10
1.3 0νββ experiments 12
1.3.1 Past experiments 12
1.3.2 Current and future experiments 14

2 AMoRE Project 21
2.1 100Mo and CaMoO4 crystal 21
2.1.1 100Mo for 0νββ search 21
2.1.2 CaMoO4 scintillating crystal 24
2.2 AMoRE detector 27
2.3 Experimental plan 27
2.4 Yang-Yang underground laboratory 28

3 Low Temperature Detector 31
3.1 Particle detectors 31
3.2 Working principle 33
3.3 Limit on energy resolution 35
3.4 Thermometers 36
3.4.1 Semiconductor thermistor 37
3.4.2 Transition edge sensor 38
3.4.3 Metallic magnetic calorimeter 40
3.5 Superconducting quantum interference device 49
3.6 Choice of thermometers 55

4 Thermal Model and Optimization 57
4.1 The first design 57
4.1.1 Design of the first large crystal detector 58
4.1.2 Detector performances of the first design 60
4.2 Thermal model 60
4.2.1 Heat capacity of detector system 60
4.2.2 Heat ow in the detector system 61
4.2.3 Thermal model equation 62
4.2.4 Numerical and analytical solutions of thermal model equations 63
4.2.5 Pulse fit and thermal model parameters 68
4.2.6 Interpretation and diagnosis of small gold film design 71
4.3 Optimization of the detector design 72
4.3.1 Equilibrium and non-equilibrium detectors 72
4.3.2 Athermal phonon collection efficiency and gold film size 73
4.3.3 Revised detector design 77
4.4 Discussions 79

5 Detector Preparation and Considerations 81
5.1 Detector preparation 81
5.1.1 Main structure 81
5.1.2 MMC devices 84
5.1.3 SQUID 86
5.1.4 Test of SQUID-MMC assembly 89
5.1.5 Performance test of MMC 92
5.1.6 Crystal cleaning and Au evaporation 93
5.1.7 Assembling 95
5.2 Cryostat and shieldings 96
5.3 Data acquisition 101

6 CaMoO4 Detector with Optimized Design 103
6.1 Detector set-up 103
6.2 Pulse shape analysis 105
6.3 Energy spectrum 109
6.4 Light detector 114
6.5 Low energy measurement 118
6.6 Summary and discussion 120

7 AMoRE-Prototype Detector 123
7.1 Measurement details 123
7.2 Signal properties 125
7.3 Energy calibration 125
7.4 Energy resolution 128
7.5 Pulse shape discrimination 130
7.6 Light detector 133
7.7 Internal background 142
7.8 Summary and discussion 148

8 AMoRE-pilot experiment 151
8.1 Configuration and preparation of detector 151
8.1.1 40Ca100MoO4 Crystals 151
8.1.2 Copper Structures 155
8.1.3 Phonon sensors 156
8.1.4 Light reflector 157
8.1.5 Light detector 159
8.1.6 Assembling of the detector tower 160
8.2 Cryostat and shieldings 161
8.3 Commissioning run 165
8.3.1 Signal properties 166
8.3.2 Electric and thermal noises 166
8.4 Data acquisition 169
8.5 Waveform processing 170
8.6 Detector performances 171
8.6.1 Pulse shape discrimination 171
8.6.2 Energy resolution 173
8.7 Preliminary sensitivity on 0νββ search 173
8.7.1 Live-time calculation 174
8.7.2 Event selection and efficiency 174
8.7.3 Preliminary sensitivity on 0νββ 175
8.7.4 Systematic uncertainties 177
8.8 Summary and discussion 179

9 Conclusion and Prospects 181

Bibliography 185

초록 195
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dc.format.extent196-
dc.language.isoeng-
dc.publisher서울대학교 대학원-
dc.subjectNeutrino, Majorana, double beta decay, calcium molybdate crystal, low temperature detector, metallic magnetic calorimeter, scintillating bolometer, AMoRE-
dc.subject.ddc523-
dc.titleA 0νββ search using large scintillating crystal with metallic magnetic calorimeter-
dc.title.alternative섬광결정과 자기양자센서를 이용한 중성미자 미방출 이중베타붕괴 (0νββ) 탐사-
dc.typeThesis-
dc.typeDissertation-
dc.contributor.AlternativeAuthor김건보-
dc.contributor.department자연과학대학 물리·천문학부-
dc.description.degreeDoctor-
dc.date.awarded2016-02-
dc.identifier.holdings000000000027▲000000000027▲000000132810▲-
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