Mass fractionation of Rb and Sr isotopes during laser ablation-multicollector-ICPMS: in situ observation and correction

Abstract Background One of the most critical issues concerning in situ mass spectrometry lies in accounting for elements and molecules that overlap target isotopes of analytical interest in a sample. This study traced the instrumental mass fractionation of Rb and Sr isotopes during laser ablation-mu...

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Main Authors: Sung-Gyun Yim, Min-Ji Jung, Youn-Joong Jeong, Yeongmin Kim, Albert Chang-sik Cheong
Format: Article
Language:English
Published: SpringerOpen 2021-02-01
Series:Journal of Analytical Science and Technology
Subjects:
Online Access:https://doi.org/10.1186/s40543-021-00263-9
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spelling doaj-c2481ad037ff449e92e6df7f8ddc48732021-03-11T11:13:17ZengSpringerOpenJournal of Analytical Science and Technology2093-33712021-02-0112111010.1186/s40543-021-00263-9Mass fractionation of Rb and Sr isotopes during laser ablation-multicollector-ICPMS: in situ observation and correctionSung-Gyun Yim0Min-Ji Jung1Youn-Joong Jeong2Yeongmin Kim3Albert Chang-sik Cheong4Graduate School of Analytical Science and Technology, Chungnam National UniversityGraduate School of Analytical Science and Technology, Chungnam National UniversityKorea Basic Science Institute Ochang CenterKorea Basic Science Institute Ochang CenterGraduate School of Analytical Science and Technology, Chungnam National UniversityAbstract Background One of the most critical issues concerning in situ mass spectrometry lies in accounting for elements and molecules that overlap target isotopes of analytical interest in a sample. This study traced the instrumental mass fractionation of Rb and Sr isotopes during laser ablation-multicollector-inductively coupled plasma mass spectrometry (LA-MC-ICPMS) to obtain reliable 87Sr/86Sr ratios for high-Rb/Sr samples. Findings In the LA-MC-ICPMS analysis, Kr interferences were corrected using Ar and He gas blanks measured without ablating material. Contributions from doubly charged Er and Yb ions were corrected using the intensities of half masses and isotopic compositions reported in the literature. After Kr correction, the calculated 166Er2+ intensity of NIST SRM 610 approached the measured intensity at mass 83, and the 173Yb2+/171Yb2+ ratio agreed with the recommended value within error ranges. Kr- and REE2+-stripped peak intensities were further corrected for Rb interference. Use of the Sr mass bias factor for the calculation of measured 87Rb/85Rb yielded 87Sr/86Sr ratios consistent with the recommended and expected values for low-Rb/Sr materials, such as NIST SRM 616, modern shark teeth, and plagioclase collected from Jeju Island, but failed to account for the 87Rb interference from high-Rb/Sr materials including NIST SRM 610 and SRM 612. We calculated in situ mass bias factor of Rb from the known 87Sr/86Sr ratios of the standards and observed a correlation between Rb and Sr mass fractionation, which allowed inference of the Rb bias from the standard run. Reliable 87Sr/86Sr and 85Rb/86Sr ratios were obtained for SRM 610 and SRM 612 using the inferred mass bias factor of Rb calculated by the standard bracketing method. Conclusions This study revealed that Rb and Sr isotopes behave differently during LA-MC-ICPMS and suggests the potential usefulness of the standard bracketing method for measuring the Rb–Sr isotopic compositions of high-Rb/Sr materials.https://doi.org/10.1186/s40543-021-00263-9Laser ablationMulticollector-ICPMSRb isotopeSr isotopeIsobaric interferenceInstrumental mass fractionation
collection DOAJ
language English
format Article
sources DOAJ
author Sung-Gyun Yim
Min-Ji Jung
Youn-Joong Jeong
Yeongmin Kim
Albert Chang-sik Cheong
spellingShingle Sung-Gyun Yim
Min-Ji Jung
Youn-Joong Jeong
Yeongmin Kim
Albert Chang-sik Cheong
Mass fractionation of Rb and Sr isotopes during laser ablation-multicollector-ICPMS: in situ observation and correction
Journal of Analytical Science and Technology
Laser ablation
Multicollector-ICPMS
Rb isotope
Sr isotope
Isobaric interference
Instrumental mass fractionation
author_facet Sung-Gyun Yim
Min-Ji Jung
Youn-Joong Jeong
Yeongmin Kim
Albert Chang-sik Cheong
author_sort Sung-Gyun Yim
title Mass fractionation of Rb and Sr isotopes during laser ablation-multicollector-ICPMS: in situ observation and correction
title_short Mass fractionation of Rb and Sr isotopes during laser ablation-multicollector-ICPMS: in situ observation and correction
title_full Mass fractionation of Rb and Sr isotopes during laser ablation-multicollector-ICPMS: in situ observation and correction
title_fullStr Mass fractionation of Rb and Sr isotopes during laser ablation-multicollector-ICPMS: in situ observation and correction
title_full_unstemmed Mass fractionation of Rb and Sr isotopes during laser ablation-multicollector-ICPMS: in situ observation and correction
title_sort mass fractionation of rb and sr isotopes during laser ablation-multicollector-icpms: in situ observation and correction
publisher SpringerOpen
series Journal of Analytical Science and Technology
issn 2093-3371
publishDate 2021-02-01
description Abstract Background One of the most critical issues concerning in situ mass spectrometry lies in accounting for elements and molecules that overlap target isotopes of analytical interest in a sample. This study traced the instrumental mass fractionation of Rb and Sr isotopes during laser ablation-multicollector-inductively coupled plasma mass spectrometry (LA-MC-ICPMS) to obtain reliable 87Sr/86Sr ratios for high-Rb/Sr samples. Findings In the LA-MC-ICPMS analysis, Kr interferences were corrected using Ar and He gas blanks measured without ablating material. Contributions from doubly charged Er and Yb ions were corrected using the intensities of half masses and isotopic compositions reported in the literature. After Kr correction, the calculated 166Er2+ intensity of NIST SRM 610 approached the measured intensity at mass 83, and the 173Yb2+/171Yb2+ ratio agreed with the recommended value within error ranges. Kr- and REE2+-stripped peak intensities were further corrected for Rb interference. Use of the Sr mass bias factor for the calculation of measured 87Rb/85Rb yielded 87Sr/86Sr ratios consistent with the recommended and expected values for low-Rb/Sr materials, such as NIST SRM 616, modern shark teeth, and plagioclase collected from Jeju Island, but failed to account for the 87Rb interference from high-Rb/Sr materials including NIST SRM 610 and SRM 612. We calculated in situ mass bias factor of Rb from the known 87Sr/86Sr ratios of the standards and observed a correlation between Rb and Sr mass fractionation, which allowed inference of the Rb bias from the standard run. Reliable 87Sr/86Sr and 85Rb/86Sr ratios were obtained for SRM 610 and SRM 612 using the inferred mass bias factor of Rb calculated by the standard bracketing method. Conclusions This study revealed that Rb and Sr isotopes behave differently during LA-MC-ICPMS and suggests the potential usefulness of the standard bracketing method for measuring the Rb–Sr isotopic compositions of high-Rb/Sr materials.
topic Laser ablation
Multicollector-ICPMS
Rb isotope
Sr isotope
Isobaric interference
Instrumental mass fractionation
url https://doi.org/10.1186/s40543-021-00263-9
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