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An improved leaping detector for flow analysis applied to iron speciation in drugs

A low inner volume (ca. 64 ml) probe was built up in an injector-commutator in order to behave as a photometric leaping detector in flow analysis. It comprises a bicolour light-emitting diode (BLED), as a source of pulsed radiation in the red and green visible region, and two phototransistors as tra...

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Autores principales: Santos, Sérgio R. B., Araújo, Mário C. U., Honorato, Ricardo S., Zagatto, Elias A. G., Lima, José F. C., Lapa, Rui A. S.
Formato: Texto
Lenguaje:English
Publicado: Hindawi Publishing Corporation 2000
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2548261/
https://www.ncbi.nlm.nih.gov/pubmed/18924860
http://dx.doi.org/10.1155/S1463924600000092
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author Santos, Sérgio R. B.
Araújo, Mário C. U.
Honorato, Ricardo S.
Zagatto, Elias A. G.
Lima, José F. C.
Lapa, Rui A. S.
author_facet Santos, Sérgio R. B.
Araújo, Mário C. U.
Honorato, Ricardo S.
Zagatto, Elias A. G.
Lima, José F. C.
Lapa, Rui A. S.
author_sort Santos, Sérgio R. B.
collection PubMed
description A low inner volume (ca. 64 ml) probe was built up in an injector-commutator in order to behave as a photometric leaping detector in flow analysis. It comprises a bicolour light-emitting diode (BLED), as a source of pulsed radiation in the red and green visible region, and two phototransistors as transducers. Sample injection, detector relocation, analytical signal recording, data treatment and definition of the spectral working range were computer-controlled. The feasibility of the system was initially demonstrated in the flow-injection speciation of iron, and the overall standard deviation of results was estimated as ± 1.6 and ± 1.4% for 1.6–4.0 mg l(−1) Fe(II) or total iron after eightfold processing of synthetic samples. The system was further applied to drug analysis: the mean deviations of results for typical samples were estimated as ± 5.2 and ± 3.3%, and the relative standard deviation as ± 1.6 and ± 1.3% for Fe(II) and total iron, respectively. Results were compared with those obtained by a conventional spectrophotometric procedure and no statistic differences at the 95% confidence level were found. In relation to an earlier system with multi-site detection, the proposed system is more stable, presenting low drift with a relative standard deviation of 0.026% and 0.039% for measurements (n=120 during 4 h of observation) with green and red emission. It is also faster with a sampling rate of 133 h(−1) and carryover problems are not found. The possibility of compensating the Schlieren noise by dual-wavelength spectrophotometry is discussed.
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spelling pubmed-25482612008-10-16 An improved leaping detector for flow analysis applied to iron speciation in drugs Santos, Sérgio R. B. Araújo, Mário C. U. Honorato, Ricardo S. Zagatto, Elias A. G. Lima, José F. C. Lapa, Rui A. S. J Autom Methods Manag Chem Research Article A low inner volume (ca. 64 ml) probe was built up in an injector-commutator in order to behave as a photometric leaping detector in flow analysis. It comprises a bicolour light-emitting diode (BLED), as a source of pulsed radiation in the red and green visible region, and two phototransistors as transducers. Sample injection, detector relocation, analytical signal recording, data treatment and definition of the spectral working range were computer-controlled. The feasibility of the system was initially demonstrated in the flow-injection speciation of iron, and the overall standard deviation of results was estimated as ± 1.6 and ± 1.4% for 1.6–4.0 mg l(−1) Fe(II) or total iron after eightfold processing of synthetic samples. The system was further applied to drug analysis: the mean deviations of results for typical samples were estimated as ± 5.2 and ± 3.3%, and the relative standard deviation as ± 1.6 and ± 1.3% for Fe(II) and total iron, respectively. Results were compared with those obtained by a conventional spectrophotometric procedure and no statistic differences at the 95% confidence level were found. In relation to an earlier system with multi-site detection, the proposed system is more stable, presenting low drift with a relative standard deviation of 0.026% and 0.039% for measurements (n=120 during 4 h of observation) with green and red emission. It is also faster with a sampling rate of 133 h(−1) and carryover problems are not found. The possibility of compensating the Schlieren noise by dual-wavelength spectrophotometry is discussed. Hindawi Publishing Corporation 2000 /pmc/articles/PMC2548261/ /pubmed/18924860 http://dx.doi.org/10.1155/S1463924600000092 Text en Copyright © 2000 Hindawi Publishing Corporation. http://creativecommons.org/licenses/by/ This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Santos, Sérgio R. B.
Araújo, Mário C. U.
Honorato, Ricardo S.
Zagatto, Elias A. G.
Lima, José F. C.
Lapa, Rui A. S.
An improved leaping detector for flow analysis applied to iron speciation in drugs
title An improved leaping detector for flow analysis applied to iron speciation in drugs
title_full An improved leaping detector for flow analysis applied to iron speciation in drugs
title_fullStr An improved leaping detector for flow analysis applied to iron speciation in drugs
title_full_unstemmed An improved leaping detector for flow analysis applied to iron speciation in drugs
title_short An improved leaping detector for flow analysis applied to iron speciation in drugs
title_sort improved leaping detector for flow analysis applied to iron speciation in drugs
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2548261/
https://www.ncbi.nlm.nih.gov/pubmed/18924860
http://dx.doi.org/10.1155/S1463924600000092
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