首页> 外文期刊>Nuclear Instruments & Methods in Physics Research. Section A, Accelerators, Spectrometers, Detectors and Associated Equipment >New approach to precisely measure γ-ray intensities for long-lived fission products, with results for the decay of ~(95)Zr
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New approach to precisely measure γ-ray intensities for long-lived fission products, with results for the decay of ~(95)Zr

机译:精确测量长寿裂变产品的γ射线强度的新方法,结果为〜(95)Zr的衰变

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摘要

For many fission products, the γ rays emitted following β decay provide an easily-detectable signature that can be used to identify their quantities and distributions in a sample. As a result, γ-ray spectroscopy is often exploited to study fission-product yields, provided sufficiently accurate information on the γ-ray intensity is available. However, in many cases, the uncertainties in the existing nuclear data are large enough that they compromise the precision achievable for modern experiments and applications. To address this need, we have developed a new experimental method that is well suited to precisely measure absolute γ-ray intensities in the β decay of long-lived fission products. The approach involves the production of a radiopure sample by implantation of a mass-separated ion beam from the CAlifornium Rare Isotope Breeder Upgrade (CARIBU) facility on a thin carbon foil. The emitted β-decay radiation is detected with a 4π gas proportional counter and a meticulously efficiency-calibrated high-purity germanium (HPGe) detector. As a first measurement to demonstrate the approach, we studied the absolute γ-ray intensities of the strongest transitions following the β decay of ~(95)Zr and its decay-daughter ~(95)Nb, and determined them to fractional precisions of better than 1-2%. In addition, with a larger sample of activity produced through neutron irradiation of an isotopically-enriched Zr foil, we performed a high-precision measurement of the relative γ-ray intensities following the decay of ~(95)Zr with just the HPGe detector. The sample-production method at CARIBU and the coincidence detection approach demonstrated here can be applied to study fission products with half-lives longer than a day, which includes isotopes important not only for nuclear-energy and national-security applications, but also for medical-isotope research and environmental monitoring.
机译:对于许多裂变产物,发出下列β的γ射线衰减提供可以用于鉴定样品中它们的数量和分布的易检测的签名。其结果是,γ射线光谱常常利用来研究裂变产物的产率,提供足够准确的信息上的γ射线的强度是可用的。然而,在许多情况下,在现有的核数据的不确定性足够大,它们兼顾精度达到现代实验和应用。为了满足这一需求,我们开发了非常适合于精确测量的长寿命裂变产物的β衰变绝对γ射线强度的新的实验方法。所述方法涉及通过从锎稀有同位素饲养员升级(CARIBU)上的薄碳箔设施中的质量分离的离子束注入生产radiopure样品。所发射的β衰变辐射与4π气体比例计数和精心效率校准高纯度锗(高纯锗)检测器检测。作为第一测量来演示的方法,我们研究了以下〜的β衰变的最强跃迁的绝对γ射线强度(95)Zr和其衰变女儿〜(95)的Nb,并测定它们的更好的分数精度超过1-2%。此外,通过同位素富集的Zr箔的中子辐照产生活性的较大的样本,我们进行相对γ射线强度的〜(95)的衰减之后的高精度测量的Zr只与HPGe探测器。在CARIBU这里展示的一致性检测方法的样品生产方法可以应用于研究裂变产物具有半衰期超过一天,其中包括同位素不仅对核能和国家安全应用,同时也为医疗更长-isotope研究和环境监测。

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  • 作者单位

    Nuclear and Chemical Sciences Division Lawrence Livermore National Laboratory Livermore California 94551 USA;

    Department of Chemistry University of California Irvine California 92697 USA Nuclear and Chemical Sciences Division Lawrence Livermore National Laboratory Livermore California 94551 USA;

    Nuclear and Chemical Sciences Division Lawrence Livermore National Laboratory Livermore California 94551 USA;

    Cyclotron Institute Texas A&M University College Station Texas 77843 USA;

    Cyclotron Institute Texas A&M University College Station Texas 77843 USA;

    Nuclear and Chemical Sciences Division Lawrence Livermore National Laboratory Livermore California 94551 USA;

    Nuclear and Chemical Sciences Division Lawrence Livermore National Laboratory Livermore California 94551 USA Department of Physics Duke University Durham North Carolina 27708 USA;

    Nuclear and Chemical Sciences Division Lawrence Livermore National Laboratory Livermore California 94551 USA;

    Physics Division Argonne National Laboratory Argonne Illinois 60439 USA Weapons and Complex Integration Lawrence Livermore National Laboratory Livermore California 94551 USA;

    Department of Nuclear Engineering University of California Berkeley California 94720 USA Nuclear and Chemical Sciences Division Lawrence Livermore National Laboratory Livermore California 94551 USA;

    Physics Division Argonne National Laboratory Argonne Illinois 60439 USA;

    Department of Physics and Applied Physics University of Massachusetts Lowell Lowell MA 01854 USA Physics Division Argonne National Laboratory Argonne Illinois 60439 USA;

    Nuclear and Chemical Sciences Division Lawrence Livermore National Laboratory Livermore California 94551 USA;

    Department of Nuclear Engineering University of California Berkeley California 94720 USA Nuclear Science Division Lawrence Berkeley Laboratory CA 94720 USA;

    Department of Physics McGill University Montreal Qnebec H3A 2T8 Canada Physics Division Argonne National Laboratory Argonne Illinois 60439 USA;

    Cyclotron Institute Texas A&M University College Station Texas 77843 USA;

    Physics Division Argonne National Laboratory Argonne Illinois 60439 USA;

    Physics Division Argonne National Laboratory Argonne Illinois 60439 USA;

    Physics Division Argonne National Laboratory Argonne Illinois 60439 USA Department of Physics University of Chicago Chicago Illinois 60637 USA;

    Department of Chemistry University of California Irvine California 92697 USA;

    Nuclear and Chemical Sciences Division Lawrence Livermore National Laboratory Livermore California 94551 USA Department of Nuclear Engineering University of California Berkeley California 94720 USA;

    Physics Division Argonne National Laboratory Argonne Illinois 60439 USA;

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  • 正文语种 eng
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  • 关键词

    4π gas counter; β and γ-ray spectroscopy; Fission products;

    机译:4π天然气柜台;β和γ射线光谱;裂变产品;

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