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    Preliminary Results for the Extraction and Measurement of Cosmogenic in Situ 14C from Quartz

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    Author
    Naysmith, P.
    Cook, G. T.
    Phillips, W. M.
    Lifton, N. A.
    Anderson, R.
    Issue Date
    2004-01-01
    Keywords
    absolute age
    academic institutions
    accelerator mass spectroscopy
    C 14
    carbon
    carbon dioxide
    cosmogenic elements
    erosion rates
    framework silicates
    graphite
    in situ
    isotopes
    mass spectroscopy
    measurement
    methods
    native elements
    quartz
    radioactive decay
    radioactive isotopes
    sample preparation
    silica minerals
    silicates
    spallation
    spectroscopy
    SUERC
    University of Arizona
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    Citation
    Naysmith, P., Cook, G. T., Phillips, W. M., Lifton, N. A., & Anderson, R. (2004). Preliminary results for the extraction and measurement of cosmogenic in situ 14C from quartz. Radiocarbon, 46(1), 201-206.
    Publisher
    Department of Geosciences, The University of Arizona
    Journal
    Radiocarbon
    Description
    From the 18th International Radiocarbon Conference held in Wellington, New Zealand, September 1-5, 2003.
    URI
    http://hdl.handle.net/10150/654883
    DOI
    10.1017/S0033822200039527
    Additional Links
    http://radiocarbon.webhost.uits.arizona.edu/
    Abstract
    Radiocarbon is produced within minerals at the earth's surface (in situ production) by a number of spallation reactions. Its relatively short half-life of 5730 yr provides us with a unique cosmogenic nuclide tool for the measurement of rapid erosion rates (>10^-3 cm yr-1) and events occurring over the past 25 kyr. At SUERC, we have designed and built a vacuum system to extract 14C from quartz which is based on a system developed at the University of Arizona. This system uses resistance heating of samples to a temperature of approximately 1100 degrees C in the presence of lithium metaborate (LiBO2) to dissolve the quartz and liberate any carbon present. During extraction, the carbon is oxidized to CO2 in an O2atmosphere so that it may be collected cryogenically. The CO2 is subsequently purified and converted to graphite for accelerator mass spectrometry (AMS) measurement. One of the biggest problems in measuring in situ 14C is establishing a low and reproducible system blank and efficient extraction of the in situ 14C component. Here, we present initial data for 14C-free CO2, derived from geological carbonate and added to the vacuum system to determine the system blank. Shielded quartz samples (which should be 14C free) and a surface quartz sample routinely analyzed at the University of Arizona were also analyzed at SUERC, and the data compared with values derived from the University of Arizona system.
    Type
    Proceedings
    text
    Language
    en
    ISSN
    0033-8222
    ae974a485f413a2113503eed53cd6c53
    10.1017/S0033822200039527
    Scopus Count
    Collections
    Radiocarbon, Volume 46, Number 1 (2004)

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