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Detector Development for the abBA Experiment.
P-N Seo1, J D Bowman1, G S Mitchell1
1Los Alamos National Laboratory, Los Alamos, NM 87545, USA.
Summary
We developed a new spectrometer for precise neutron beta decay measurements. This device utilizes advanced silicon detectors to capture decay products, enabling new insights into fundamental physics.
Area of Science:
- Nuclear Physics
- Particle Physics
- Spectroscopy
Background:
- Neutron beta decay provides a sensitive probe of the weak interaction.
- Precise measurements of decay correlations (a, b, B, A) are crucial for testing the Standard Model and searching for new physics.
- Existing experimental methods face limitations in detector performance and precision.
Purpose of the Study:
- To develop and test a novel field-expansion spectrometer for measuring neutron beta decay correlations.
- To evaluate the performance of silicon detectors for charged particle detection in coincidence.
- To establish stringent requirements for detector characteristics like energy and timing resolution, dead layer thickness, and efficiency.
Main Methods:
- Design and implementation of a new field-expansion spectrometer.
- Utilizing large-area segmented silicon detectors for simultaneous proton and electron detection.
- Testing commercially available surface-barrier silicon detectors for energy and timing resolution.
- Measuring the dead-layer thickness of ion-implanted silicon detectors using a 3.2 MeV alpha source.
Main Results:
- The developed spectrometer is designed to meet the stringent requirements for precision neutron beta decay measurements.
- Initial testing of silicon detectors shows promising energy resolution (< 5 keV) and timing performance (~1 ns).
- Dead-layer thickness measurements are critical for observing low-energy protons (30 keV).
Conclusions:
- The new spectrometer design and tested silicon detectors offer a promising approach for advancing neutron beta decay studies.
- Achieving high precision in these measurements requires careful selection and characterization of detector components.
- Further development and optimization are expected to yield significant results in fundamental physics.
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