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Environmental liquid scintillation analysis

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TLDR
In this article, the authors present the principles of liquid scintillation counting (LSC) measurement techniques and focus on the practical issues in the LSC determination of environmental radionuclides, as well as the status of the present research progress in these aspects.
Abstract
Liquid scintillation counting (LSC) is a major method for the measurement of beta-emitting and some alpha-emitters. It has been applied in many aspects such as the monitoring of environmental radioactivity, the behavior of radionuclides in the environment, and the characterization of nuclear waste for the decommissioning of nuclear facilities. Radionuclides are also widely applied to the investigation of environmental processes. However, the level of radionuclides in the environment is normally very low, and the resolution of LSC alone is not sufficiently high to identify and quantitatively measure different radionuclides. Low background LSC and chemical separation and purification are needed. This chapter aims to present the principles of LSC measurement techniques for the above purposes and focus on the practical issues in the LSC determination of environmental radionuclides, as well as the status of the present research progress in these aspects. The principles of low-level counting using LSC including the methods for reducing the background in the LSC instrument and practical issues in sample preparation are presented. The principles and applications for the measurement of alpha-emitters using LSC with the alpha/beta discrimination features are presented. The main application of triple-to-double coincidence ratio–based LSC in normal and Cerenkov counting models are also described. Most of the effort of this chapter focuses on the application of LSC in the determination of different anthropogenic and naturally occurring radionuclides, including tritium, 14C, 55Fe, 63Ni, 89,90Sr, 90Y, 99Tc, 241Pu, 36Cl, 41Ca, 129I, 210Po, 210Pb, isotopes of uranium, thorium, radium, and radon. Besides the LSC measurement methods, the detailed and practical chemical separation of these radionuclides from different sample matrices, as well as the sample preparation methods for LSC measurement are discussed based on the open publications and the experiences of the authors.

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Citations
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Journal ArticleDOI

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References
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Journal ArticleDOI

Development and validation of a robust analytical method for the determination of 51Cr in blood samples by liquid scintillation counting (LSC)

TL;DR: In this article, a robust analytical method for the measurement of 51Cr in blood samples in routine mode by means of liquid scintillation count was developed and validated with spiked blood samples from different subjects.

Liquid scintillation counting measurements of radon from seepage groundwater in lake biwa, japan

TL;DR: The authors used toluene extraction and the integral counting technique of liquid scintillation counting (LSC) to calculate the value of a point in a set of points in a grid.
Journal ArticleDOI

Adaptation of PTB’s analytical modelling for TDCR–Cherenkov activity measurements at LNHB

TL;DR: In this paper, a specific modelling of Cherenkov light emission has been constructed for activity determination, the analytical modelling first developed at PTB was adapted to account for the physical features of the detection system used at LNHB and the first results are presented in the case of activity measurements of two high-energy β−-emitters (90Y and 89Sr).

Performance of two-phase and homogenous sample composistions in measuring 222 Rn in drinking water

Salonen L
TL;DR: In this paper, a comparison of two direct liquid scintillation (LS) methods for surveying 222Rn in drinking water was performed using an emulsifying cocktail and three organic cocktails.

THE ROLE OF Bi4Ge3O12 AS AN AUXILIARY SCINTILLATOR FOR a/f/y LIQUID SCINTILLATION COUNTING AND LOW-LEVEL COUNTING

J. E. Noakes
TL;DR: In this article, a liquid scintillation counter using a hybrid Bi4Ge3O12 detector which is optically coupled to the same photomultipliers that detect cocktail Scintillation events is described.
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