Contamination control and assay results for the Majorana Demonstrator ultra clean components

C. Christofferson, N. Abgrall, S. Alvis, I. Arnquist, F. Avignone, A. Barabash, C. Barton, F. Bertrand, T. Bode, A. Bradley, V. Brudanin, M. Busch, M. Buuck, T. Caldwell, Y. Chan, P. Chu, C. Cuesta, J. Detwiler, C. Dunagan, Y. Efremenko, H. Ejiri, S. Elliott, T. Gilliss, G. Giovanetti, M. Green, J. Gruszko, I. Guinn, V. Guiseppe, C. Haufe, L. Hehn, R. Henning, E. Hoppe, M. Howe, K. Keeter, M. Kidd, S. Konovalov, R. Kouzes, A. M. Lopez, R. Martin, R. Massarczyk, S. Meijer, S. Mertens, J. Myslik, C. O'Shaughnessy, G. Othman, A. Poon, D. Radford, J. Rager, A. Reine, K. Rielage, R. Robertson, N. Rouf, B. Shanks, M. Shirchenko, A. Suriano, D. Tedeschi, J. Trimble, R. Varner, S. Vasilyev, K. Vetter, K. Vorren, B. White, J. Wilkerson, C. Wiseman, W. Xu, E. Yakushev, C.-H. Yu, V. Yumatov, I. Zhitnikov, B. Zhu
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引用次数: 2

Abstract

The Majorana Demonstrator is a neutrinoless double beta decay experiment utilizing enriched Ge-76 detectors in 2 separate modules inside of a common solid shield at the Sanford Underground Research Facility. The Demonstrator has utilized world leading assay sensitivities to develop clean materials and processes for producing ultra-pure copper and plastic components. This experiment is now operating, and initial data provide new insights into the success of cleaning and processing. Post production copper assays after the completion of Module 1 showed an increase in U and Th contamination in finished parts compared to starting bulk material. A revised cleaning method and additional round of surface contamination studies prior to Module 2 construction have provided evidence that more rigorous process control can reduce surface contamination. This article describes the assay results and discuss further studies to take advantage of assay capabilities for the purpose of maintaining ultra clean fabrication and p...
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马约拉纳演示器超净组件的污染控制和分析结果
马约拉纳演示器是一个中微子双β衰变实验,利用富集的Ge-76探测器在桑福德地下研究设施的一个普通固体屏蔽内的两个独立模块中进行。该演示器利用世界领先的分析灵敏度来开发用于生产超纯铜和塑料部件的清洁材料和工艺。该实验目前正在进行,初步数据为清洁和加工的成功提供了新的见解。模块1完成后的后期铜分析显示,与初始散装材料相比,成品部件中的U和Th污染有所增加。在模块2施工之前,经过修订的清洁方法和额外一轮的表面污染研究提供了证据,证明更严格的过程控制可以减少表面污染。本文描述了分析结果,并讨论了进一步的研究,以利用分析能力来保持超清洁的制造和生产。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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