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Zbořil, Miroslav: Feste Elektronenquellen für die Energieskalaüberwachung im KATRIN Experiment. 2011
Inhalt
Zusammenfassung
Abstract
Acknowledgments
Contents
1 Introduction
1.1 Neutrino physics
1.1.1 Brief history of neutrino
1.1.2 Motivation for neutrino mass determination
1.1.3 Towards the absolute scale of neutrino masses
1.2 Process of internal conversion
Thesis outline
2 The KATRIN experiment
2.1 Tritium beta-decay
2.2 The MAC-E filter technique
2.3 Brief overview of the KATRIN experimental setup
2.4 Systematic and statistical uncertainties
3 Stability monitoring and calibration of the energy scale in KATRIN
3.1 Motivation for continuous monitoring and absolute calibration of the energy scale
3.2 Concept of monitoring of the KATRIN energy scale stability
3.2.1 High precision high voltage divider
3.3 Candidates for quasi-monoenergetic electron sources for KATRIN
3.3.1 Photoelectrons from 241Am/Co
3.3.2 Conversion electrons from 83mKr
4 Solid 83Rb/83mKr electron sources for KATRIN
4.1 Vacuum-evaporated sources
4.1.1 Vacuum evaporation of 83Rb
4.1.2 Samples investigated in this work
4.2 Ion-implanted sources
4.2.1 Basic processes of ion implantation
4.2.2 Ion implantation of 83Rb at the ISOLDE facility
4.2.3 Samples investigated in this work
4.3 Conversion electrons from solid 83Rb/83mKr sources
4.3.1 Shifts of electron binding energies
4.3.2 Shake-up and shake-off effects
4.3.3 Inelastically scattered electrons
5 Mainz MAC-E filter used for conversion electron spectroscopy
5.1 Experimental setup
5.1.1 MAC-E filter
5.1.2 Source section
5.1.3 Detector section
5.1.4 Vacuum system
5.1.5 High voltage system
5.1.6 Control and data acquisition system
5.2 Data analysis
5.2.1 Typical measurement and data treatment
5.2.2 Energy scale corrections
5.2.3 Dead time correction
5.2.4 Expected count rate of zero-energy-loss electrons
5.2.5 Transmission function
5.2.6 Description of the conversion electron line shape
5.2.7 Cross-correlation method
5.2.8 Comparison of cross-correlation and many-parameters fit methods
6 Long-term measurements of the conversion electrons energy stability at Mainz MAC-E filter
6.1 Pilot studies of the energy stability of the 83Rb/83mKr sources
6.1.1 Proof of principle
6.1.2 Measurements with vacuum-evaporated sources mounted onto CKrS setup
6.2 First measurement phase: single vacuum-evaporated source
6.2.1 Systematic measurements of the long-term drifts
6.2.2 Sudden unexpected shift of the high voltage scale
6.2.3 Measurements with the shifted high voltage scale
6.2.4 Influence of the source position on the K-32 line
6.3 Second measurement phase: one ion-implanted and two vacuum-evaporated sources investigated simultaneously
6.3.1 Comparison of drifts of individual sources
6.3.2 Changes of vacuum conditions due to breakdowns and bake-out
6.3.3 Tests with deliberate venting of the vacuum setup
6.3.4 Sudden unexpected change of the high voltage divider scale factor
6.3.5 Influence of the source position on the K-32 line at two different spectrometer resolutions
6.3.6 Background and transmission properties of Mainz MAC-E filter
6.4 Third measurement phase: four ion-implanted sources investigated simultaneously
6.4.1 Comparison of drifts of individual sources
6.4.2 Change of residual gas composition in spectrometer vessel resulting from vacuum breakdown
6.5 Summary of results
6.5.1 Energy stability of conversion electrons emitted by the solid sources
6.5.2 Overview of systematic effects
7 Conversion electron spectrum of 83mKr in solid sources
7.1 Choice of data and estimate of analysis precision
7.2 Shapes of the conversion electron lines
7.2.1 Description of the conversion lines of the vacuum-evaporated sources with a singlet
7.2.2 Doublet structure of the conversion lines of the ion-implanted sources
7.2.3 Verification of the many-parameters fit procedure
7.2.4 Discussion of amplitude and background of the conversion electron lines
7.3 Absolute kinetic energies of the conversion electrons from solid sources
7.3.1 Conversion electrons of the 9.4keV gamma transition
7.3.2 Conversion electrons of the 32keV gamma transition
7.3.3 Influence of 83mKr atom environment on the electron binding energy
7.3.4 Energy difference of the 9.4keV and 32keV gamma transitions
7.4 Hypotheses for the explanation of the asymmetry and splitting in the 83mKr conversion electron spectra of the ion-implanted 83Rb/83mKr sources
7.4.1 Different environments of the 83Rb atoms
7.4.2 Surface plasmons
7.4.3 Electron-hole interaction in metals
7.4.4 Strong electric fields in polycrystalline foils
7.4.5 Internal conversion at neighboring atoms
7.5 Electron energy loss spectra of the solid sources
8 Conclusions and outlook
A Electron binding energies of gaseous krypton
B Evaluation of the energy shifts of the 83mKr conversion lines resulting from abrupt changes of vacuum conditions
B.1 Second measurement phase
B.2 Third measurement phase
C Investigation of different environments of the 83Rb atoms in the ion-implanted 83Rb/83mKr sources with the XPS method
Bibliography