226Ra, 210Pb, 210Bi and 210Po deposition and removal from surfaces and liquids

被引:0
作者
M. Wójcik
G. Zuzel
机构
[1] Jagiellonian University,M. Smoluchowski Institute of Physics
来源
Journal of Radioanalytical and Nuclear Chemistry | 2013年 / 296卷
关键词
Radium adsorption; Lead removal; Distillation; Water extraction; Etching of germanium surface;
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学科分类号
摘要
Deposition of 226Ra from water on nylon was investigated. Measurements performed for different pH and different radium concentrations in the water gave similar absolute activities deposited on the foil surface. Obtained results were used to estimate the amount of 226Ra plated-out on the nylon scintillator vessel in the solar neutrino experiment BOREXINO during filling of the detector. Another problem studied in the frame of BOREXINO was the removal of 210Pb from its organic liquid scintillator by applying distillation and water extraction. After several tests had been performed for both methods it was found that after the water extraction the initial lead content in the scintillator sample was reduced only accordingly to the ratio of the volumes of the applied liquids (simple dilution). In contrast to this, distillation was very effective providing in the best case a 210Pb reduction factor higher than 100. Removal efficiencies of the long-lived 222Rn daughters during etching from surfaces of standard and high purity germanium were investigated in the frame of the GERDA experiment, which aims to search for neutrino-less double beta decay of 76Ge. The standard etching procedure of Canberra used during production of high purity n-type germanium diodes was applied to germanium discs, which had been exposed earlier to a strong 222Rn source for its progenies deposition. In contrast to copper and stainless steel, 210Pb, 210Bi and 210Po was removed from germanium very efficiently. An evidence of a reverse process was also observed—the isotopes were transferred from the etchant to the clean germanium surface.
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页码:639 / 645
页数:6
相关论文
共 14 条
[1]  
Zuzel G(2009)undefined Appl Radiat Isot 67 889-893
[2]  
Simgen H(2009)undefined Nucl Instrum Methods A 600 568-593
[3]  
Alimonti G(2003)undefined Nucl Instrum Methods A 497 407-413
[4]  
Collaboration BOREXINO(2000)undefined Appl Radiat Isot 53 371-375
[5]  
Simgen H(2012)undefined Nucl Instrum Methods A 676 140-148
[6]  
Rau W(2012)undefined Nucl Instrum Methods A 676 149-154
[7]  
Heusser G(1986)undefined J Radioanal Nucl Chem 102 443-453
[8]  
Zuzel G(2003)undefined Nucl Instrum Methods A 498 240-255
[9]  
Wojcik M(2008)undefined Nucl Instrum Methods A 584 98-113
[10]  
Zuzel G(undefined)undefined undefined undefined undefined-undefined