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Simultaneous determination of radionuclides separable into natural decay series by use of time-interval analysis
Authors:Tetsuo?Hashimoto  author-information"  >  author-information__contact u-icon-before"  >  mailto:thashi@curie.sc.niigata-u.ac.jp"   title="  thashi@curie.sc.niigata-u.ac.jp"   itemprop="  email"   data-track="  click"   data-track-action="  Email author"   data-track-label="  "  >Email author,Yukihisa?Sanada,Yasuhiro?Uezu
Affiliation:(1) Faculty of Science, Niigata University, 950–2181 Niigata, Japan;(2) Radiation Protection Division, Japan Nuclear Cycle Development Institute Tokai works, 4–33 Muramatsu Tokai-mura Naka-gun, Ibaraki, Japan
Abstract:A delayed coincidence method, time-interval analysis (TIA), has been applied to successive agragr decay events on the millisecond time-scale. Such decay events are part of the 220Rnrarr216Po (T1/2 145 ms) (Th-series) and 219Rnrarr215Po (T1/2 1.78 ms) (Ac-series). By using TIA in addition to measurement of 226Ra (U-series) from agr-spectrometry by liquid scintillation counting (LSC), two natural decay series could be identified and separated. The TIA detection efficiency was improved by using the pulse-shape discrimination technique (PSD) to reject beta-pulses, by solvent extraction of Ra combined with simple chemical separation, and by purging the scintillation solution with dry N2 gas. The U- and Th-series together with the Ac-series were determined, respectively, from alpha spectra and TIA carried out immediately after Ra-extraction. Using the 221Frrarr217At (T1/2 32.3 ms) decay process as a tracer, overall yields were estimated from application of TIA to the 225Ra (Np-decay series) at the time of maximum growth. The present method has proven useful for simultaneous determination of three radioactive decay series in environmental samples.
Keywords:Radionuclides  Natural decay series  Time-interval analysis (TIA)    /content/cdjxakjwxat1bj43/xxlarge945.gif"   alt="  agr"   align="  BASELINE"   BORDER="  0"  >-Spectrometry  Liquid scintillation counting (LSC)  Pulse-shape discrimination technique (PSD)
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