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Speciation Analysis of Arsenic by Selective Hydride Generation-Cryotrapping-Atomic Fluorescence Spectrometry with Flame-in-Gas-Shield Atomizer: Achieving Extremely Low Detection Limits with Inexpensive Instrumentation
[Image: see text] This work describes the method of a selective hydride generation-cryotrapping (HG-CT) coupled to an extremely sensitive but simple in-house assembled and designed atomic fluorescence spectrometry (AFS) instrument for determination of toxicologically important As species. Here, an a...
Autores principales: | , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
American
Chemical
Society
2014
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Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4204903/ https://www.ncbi.nlm.nih.gov/pubmed/25300934 http://dx.doi.org/10.1021/ac502931k |
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author | Musil, Stanislav Matoušek, Tomáš Currier, Jenna M. Stýblo, Miroslav Dědina, Jiří |
author_facet | Musil, Stanislav Matoušek, Tomáš Currier, Jenna M. Stýblo, Miroslav Dědina, Jiří |
author_sort | Musil, Stanislav |
collection | PubMed |
description | [Image: see text] This work describes the method of a selective hydride generation-cryotrapping (HG-CT) coupled to an extremely sensitive but simple in-house assembled and designed atomic fluorescence spectrometry (AFS) instrument for determination of toxicologically important As species. Here, an advanced flame-in-gas-shield atomizer (FIGS) was interfaced to HG-CT and its performance was compared to a standard miniature diffusion flame (MDF) atomizer. A significant improvement both in sensitivity and baseline noise was found that was reflected in improved (4 times) limits of detection (LODs). The yielded LODs with the FIGS atomizer were 0.44, 0.74, 0.15, 0.17 and 0.67 ng L(–1) for arsenite, total inorganic, mono-, dimethylated As and trimethylarsine oxide, respectively. Moreover, the sensitivities with FIGS and MDF were equal for all As species, allowing for the possibility of single species standardization with arsenate standard for accurate quantification of all other As species. The accuracy of HG-CT-AFS with FIGS was verified by speciation analysis in two samples of bottled drinking water and certified reference materials, NRC CASS-5 (nearshore seawater) and SLRS-5 (river water) that contain traces of methylated As species. As speciation was in agreement with results previously reported and sums of all quantified species corresponded with the certified total As. The feasibility of HG-CT-AFS with FIGS was also demonstrated by the speciation analysis in microsamples of exfoliated bladder epithelial cells isolated from human urine. The results for the sums of trivalent and pentavalent As species corresponded well with the reference results obtained by HG-CT-ICPMS (inductively coupled plasma mass spectrometry). |
format | Online Article Text |
id | pubmed-4204903 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2014 |
publisher | American
Chemical
Society |
record_format | MEDLINE/PubMed |
spelling | pubmed-42049032015-09-26 Speciation Analysis of Arsenic by Selective Hydride Generation-Cryotrapping-Atomic Fluorescence Spectrometry with Flame-in-Gas-Shield Atomizer: Achieving Extremely Low Detection Limits with Inexpensive Instrumentation Musil, Stanislav Matoušek, Tomáš Currier, Jenna M. Stýblo, Miroslav Dědina, Jiří Anal Chem [Image: see text] This work describes the method of a selective hydride generation-cryotrapping (HG-CT) coupled to an extremely sensitive but simple in-house assembled and designed atomic fluorescence spectrometry (AFS) instrument for determination of toxicologically important As species. Here, an advanced flame-in-gas-shield atomizer (FIGS) was interfaced to HG-CT and its performance was compared to a standard miniature diffusion flame (MDF) atomizer. A significant improvement both in sensitivity and baseline noise was found that was reflected in improved (4 times) limits of detection (LODs). The yielded LODs with the FIGS atomizer were 0.44, 0.74, 0.15, 0.17 and 0.67 ng L(–1) for arsenite, total inorganic, mono-, dimethylated As and trimethylarsine oxide, respectively. Moreover, the sensitivities with FIGS and MDF were equal for all As species, allowing for the possibility of single species standardization with arsenate standard for accurate quantification of all other As species. The accuracy of HG-CT-AFS with FIGS was verified by speciation analysis in two samples of bottled drinking water and certified reference materials, NRC CASS-5 (nearshore seawater) and SLRS-5 (river water) that contain traces of methylated As species. As speciation was in agreement with results previously reported and sums of all quantified species corresponded with the certified total As. The feasibility of HG-CT-AFS with FIGS was also demonstrated by the speciation analysis in microsamples of exfoliated bladder epithelial cells isolated from human urine. The results for the sums of trivalent and pentavalent As species corresponded well with the reference results obtained by HG-CT-ICPMS (inductively coupled plasma mass spectrometry). American Chemical Society 2014-09-26 2014-10-21 /pmc/articles/PMC4204903/ /pubmed/25300934 http://dx.doi.org/10.1021/ac502931k Text en Copyright © 2014 American Chemical Society Terms of Use (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) |
spellingShingle | Musil, Stanislav Matoušek, Tomáš Currier, Jenna M. Stýblo, Miroslav Dědina, Jiří Speciation Analysis of Arsenic by Selective Hydride Generation-Cryotrapping-Atomic Fluorescence Spectrometry with Flame-in-Gas-Shield Atomizer: Achieving Extremely Low Detection Limits with Inexpensive Instrumentation |
title | Speciation Analysis of Arsenic by Selective Hydride Generation-Cryotrapping-Atomic
Fluorescence Spectrometry with Flame-in-Gas-Shield Atomizer: Achieving
Extremely Low Detection Limits with Inexpensive Instrumentation |
title_full | Speciation Analysis of Arsenic by Selective Hydride Generation-Cryotrapping-Atomic
Fluorescence Spectrometry with Flame-in-Gas-Shield Atomizer: Achieving
Extremely Low Detection Limits with Inexpensive Instrumentation |
title_fullStr | Speciation Analysis of Arsenic by Selective Hydride Generation-Cryotrapping-Atomic
Fluorescence Spectrometry with Flame-in-Gas-Shield Atomizer: Achieving
Extremely Low Detection Limits with Inexpensive Instrumentation |
title_full_unstemmed | Speciation Analysis of Arsenic by Selective Hydride Generation-Cryotrapping-Atomic
Fluorescence Spectrometry with Flame-in-Gas-Shield Atomizer: Achieving
Extremely Low Detection Limits with Inexpensive Instrumentation |
title_short | Speciation Analysis of Arsenic by Selective Hydride Generation-Cryotrapping-Atomic
Fluorescence Spectrometry with Flame-in-Gas-Shield Atomizer: Achieving
Extremely Low Detection Limits with Inexpensive Instrumentation |
title_sort | speciation analysis of arsenic by selective hydride generation-cryotrapping-atomic
fluorescence spectrometry with flame-in-gas-shield atomizer: achieving
extremely low detection limits with inexpensive instrumentation |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4204903/ https://www.ncbi.nlm.nih.gov/pubmed/25300934 http://dx.doi.org/10.1021/ac502931k |
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