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RUI: Radioactive Krypton Background Evaluation by Atom Counting

RUI: Radioactive Krypton Background Evaluation by Atom Counting
RUI:通过原子计数进行放射性氪本底评估
批准号:
0457100
负责人:
Chad Orzel
金额:
$13.05万
依托单位:
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2005
资助国家:
美国
项目状态:
已结题
起止时间:
2005-04-15 至 2009-03-31

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中文摘要
翻译
该提案提出了一项新技术的发展,该技术基于原子陷阱痕量分析(ATTA)方法,该方法用于使用稀有的Kr同位素进行放射性测年,以测量低至3x10^(-14)的其他稀有气体的Kr含量。基于液态稀有气体的新一代探测器为令人兴奋的新发现提供了一条有希望的途径。这些探测器包括XENON暗物质搜索项目,XMASS和CLEAN中微子探测项目,所有这些项目都依赖于使用液态氙或氖作为闪烁介质来探测低能量的罕见事件。在所有这些系统中,氪-85的衰变是一个重要的和有问题的背景事件的来源。85Kr具有化学惰性,半衰期为10.76年,因此很难从其他稀有气体中分离出来。氙探测器将要求Kr/Xe丰度最多为10^10的1分之一,XMASS和CLEAN探测器将要求Kr/Xe或Kr/Ne的丰度最多为10^14的1分之一。传统的商业技术无法保证这种纯度水平。在ATTA方法中,要分析的气体样本被引入到一个设备中,该设备使用激光冷却技术从原子束中冷却并捕获处于亚稳态的Kr原子。利用灵敏的光电探测器探测捕获原子的激光荧光,直接测量捕获原子的装载率,可以实现高信噪比的单捕获原子计数。Kr丰度可以通过比较超纯样品和已知Kr含量样品的加载率来确定。更广泛的影响提议的测量将有助于XENON, CLEAN和XMASS的努力,帮助描述这些新探测器的背景水平。此外,ATTA技术可能对研究级气体的制造商具有一定的商业利益。该技术可以扩展到探测除Kr以外的元素,并测量远低于传统技术可能达到的水平的杂质气体。这可能使制造比目前可能的更高纯度的气体成为可能,这将对许多领域的研究人员有用。
英文摘要
This proposal addresses the development of a new technique, based on the Atom Trap Trace Analysis (ATTA) method used for radioactive dating with rare Kr isotopes, to measure the Kr content of other rare gases at levels as low as 3x10^(-14). A new generation of detectors based on liquid rare gases offers a promising avenue for exciting new discoveries. These detectors include the XENON dark matter search project, and the XMASS and CLEAN neutrino detection projects, all of which rely on the use of liquid xenon or neon as a scintillation medium to detect infrequent events at low energies. In all of these systems, the beta decay of krypton-85 is a significant and problematic source of background events. 85Kr is chemically inert, and has a half-life of 10.76 years, making it extremely difficult to separate from other rare gases. The XENON detector will require Kr/Xe abundances of at most one part in 10^10, and the XMASS and CLEAN detectors will require Kr/Xe or Kr/Ne of at most one part in 10^14. This level of purity cannot be guaranteed with conventional commercial techniques. In the ATTA method, a sample of the gas to be analyzed is introduced to an apparatus that uses laser cooling techniques to cool and trap Kr atoms in a metastable state from an atomic beam. Single trapped atoms can be counted with high signal-to-noise by detecting the laser fluorescence of the trapped atoms with a sensitive photodetector, directly measuring the trap loading rate. The Kr abundance can be determined by comparing the loading rate for an ultra-pure sample to that of a sample with known Kr content. Broader ImpactThe proposed measurements will aid in the XENON, CLEAN and XMASS efforts by helping characterize the background levels in these new detectors. Additionally, the ATTA technique may be of some commercial interest to manufacturers of research grade gases. The technique can be extended to detect elements other than Kr, and to measure impurity gases at levels well below those possible with conventional techniques. This may enable the manufacture of gases of higher purity than is currently possible, which would be useful to researchers in many fields.
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