4.7 Article

Direct detection and isotope analysis of individual particles in suspension by single particle mode MC-ICP-MS for nuclear safety

Journal

JOURNAL OF ANALYTICAL ATOMIC SPECTROMETRY
Volume 30, Issue 5, Pages 1184-1190

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/c4ja00339j

Keywords

-

Funding

  1. National Natural Science Foundation of China [11105107]
  2. National Key Scientific Instrument and Equipment Development Project [2013YQ470781]

Ask authors/readers for more resources

Isotopic fingerprint information carried by an individual particle is of great value in nuclear safety, nuclear safeguards, and nuclear environment. Several techniques, such as single particle mode ICP-MS, laser ablation ICP-MS and LA-MC-ICP-MS, have been developed for direct detection or isotope analysis of individual particles in the solid sample. In this study, single particle mode MC-ICP-MS was proposed for the precise isotopic measurement of individual particles in suspension. Erbium oxide powder with natural isotopic abundance used as uranium particle surrogate was dispersed in ultrapure water to prepare a suspension sample. Uranium isotope at different enrichment levels could be covered by the erbium isotope range. Erbium solution was nebulized before and after particle analysis to determine the mass bias factors in the mass spectrometer. The submicron-sized erbium particle was nebulized and then introduced into the ICP torch for detection and isotopic measurement in single particle mode. From the histogram of pulse intensities, the spherical equivalent physical diameter was estimated to be around 226 nm with Er-164 amount of 7 x 10(-16) g. Two data processing strategies, point by point (PBP) and linear regression slope (LRS), were used to determine the erbium isotope ratios. Results show that the precisions of Er-170/Er-166, Er-168/Er-166, and Er-167/Er-166 ratios determined by PBP method are 5.5%, 4.6% and 3.9%, respectively. The relative errors of these measured isotope ratios after mass bias correction lies between 0.2-4%. The precision and accuracy of Er-164/Er-166 ratio are worse due to the weak signal of Er-164. By LRS method, the precisions of determined Er-170/Er-166, Er-168/Er-166, Er-167/Er-166 and Er-164/Er-166 ratios improved by one order of magnitude at least. The precisions of Er-170/Er-166, Er-168/Er-166 and Er-167/Er-166 ratios are better than 0.3%. The precision and accuracy of the Er-164/Er-166 ratio are significantly improved. Moreover, the Er-162/Er-166 ratio at 10 (3) level could also be determined. The proposed technique is suitable for the detection and isotope analysis of particles with size range of 130 nm-3 mu m. The sample preparation process is simple, which eliminates possible contamination. The technique combines fast screening, sensitive detection, and isotopic identification of an individual particle.

Authors

I am an author on this paper
Click your name to claim this paper and add it to your profile.

Reviews

Primary Rating

4.7
Not enough ratings

Secondary Ratings

Novelty
-
Significance
-
Scientific rigor
-
Rate this paper

Recommended

No Data Available
No Data Available