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    Neutron activation analyses and half-life measurements at the USGS TRIGA reactor

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    Neutron activation analyses and ...
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    Author
    Larson, Robert E.
    Advisor
    Greife, Uwe
    Hudson, Marty
    Date issued
    2013
    Keywords
    half-life
    regression
    physics
    nuclear
    Half-life (Nuclear physics) -- Measurement
    Beta decay -- Measurement
    Nuclear activation analysis
    Electrons -- Capture
    Density functionals
    
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    URI
    https://hdl.handle.net/11124/11933
    Abstract
    Neutron activation of materials followed by gamma spectroscopy using high-purity germanium detectors is an effective method for making measurements of nuclear beta decay half-lives and for detecting trace amounts of elements present in materials. This research explores applications of neutron activation analysis (NAA) in two parts. Part 1. High Precision Methods for Measuring Decay Half-Lives, Chapters 1 through 8 Part one develops research methods and data analysis techniques for making high precision measurements of nuclear beta decay half-lives. The change in the electron capture half-life of [superscript 51]Cr in pure chromium versus chromium mixed in a gold lattice structure is explored, and the [superscript 97]Ru electron capture decay half-life are compared for ruthenium in a pure crystal versus ruthenium in a rutile oxide state, RuO2. In addition, the beta-minus decay half-life of [superscript 71m]Zn is measured and compared with new high precision findings. Density Functional Theory is used to explain the measured magnitude of changes in electron capture half-life from changes in the surrounding lattice electron configuration. Part 2. Debris Collection Nuclear Diagnostic at the National Ignition Facility, Chapters 9 through 11 Part two explores the design and development of a solid debris collector for use as a diagnostic tool at the National Ignition Facility (NIF). NAA measurements are performed on NIF post-shot debris collected on witness plates in the NIF chamber. In this application NAA is used to detect and quantify the amount of trace amounts of gold from the hohlraum and germanium from the pellet present in the debris collected after a NIF shot. The design of a solid debris collector based on material x-ray ablation properties is given, and calculations are done to predict performance and results for the collection and measurements of trace amounts of gold and germanium from dissociated hohlraum debris.
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