Photometric Determination of Iron in Pharmaceutical Formulations Using Double-Beam Direct Injection Flow Detector

In this work, an innovative, flow-through, double-beam, photometric detector with direct injection of the reagents (double-DID) was used for the first time for the determination of iron in pharmaceuticals. For stable measurement of the absorbance, double paired emission-detection LED diodes and a lo...

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Main Author: Stanislawa Koronkiewicz
Format: Article
Language:English
Published: MDPI AG 2021-07-01
Series:Molecules
Subjects:
Online Access:https://www.mdpi.com/1420-3049/26/15/4498
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spelling doaj-8f75b816ea6744b8b9b1be00162240df2021-08-06T15:28:55ZengMDPI AGMolecules1420-30492021-07-01264498449810.3390/molecules26154498Photometric Determination of Iron in Pharmaceutical Formulations Using Double-Beam Direct Injection Flow DetectorStanislawa Koronkiewicz0Department of Chemistry, University of Warmia and Mazury in Olsztyn, 10-957 Olsztyn, PolandIn this work, an innovative, flow-through, double-beam, photometric detector with direct injection of the reagents (double-DID) was used for the first time for the determination of iron in pharmaceuticals. For stable measurement of the absorbance, double paired emission-detection LED diodes and a log ratio precision amplifier have been applied. The detector was integrated with the system of solenoid micro-pumps. The micro-pumps helped to reduce the number of reagents used and are responsible for precise solution dispensing and propelling. The flow system is characterized by a high level of automation. The total iron was determined as a Fe(II) with photometric detection using 1,10-phenanthroline as a complexing agent. The optimum conditions of the propose analytical procedure were established and the method was validated. The calibration graph was linear in the range of 1 to 30 mg L<sup>−1</sup>. The limit of detection (LOD) was 0.5 mg L<sup>−1</sup>. The throughput of the method was 90 samples/hour. The repeatability of the method expressed as the relative standard deviation (R.S.D.) was 2% (n = 10). The method was characterized by very low consumption of reagents and samples (20 μL each) and a small amount of waste produced (about 540 µL per analysis). The proposed flow method was successfully applied for determination of iron in pharmaceutical products. The results were in good agreement with those obtained using the manual UV-Vis spectrophotometry and with values claimed by the manufacturers. The flow system worked very stably and was insensitive to bubbles appearing in the system.https://www.mdpi.com/1420-3049/26/15/4498pharmaceutical analysisiron determinationspectrophotometryflow analysisdirect injection detectormulti-pumping flow system
collection DOAJ
language English
format Article
sources DOAJ
author Stanislawa Koronkiewicz
spellingShingle Stanislawa Koronkiewicz
Photometric Determination of Iron in Pharmaceutical Formulations Using Double-Beam Direct Injection Flow Detector
Molecules
pharmaceutical analysis
iron determination
spectrophotometry
flow analysis
direct injection detector
multi-pumping flow system
author_facet Stanislawa Koronkiewicz
author_sort Stanislawa Koronkiewicz
title Photometric Determination of Iron in Pharmaceutical Formulations Using Double-Beam Direct Injection Flow Detector
title_short Photometric Determination of Iron in Pharmaceutical Formulations Using Double-Beam Direct Injection Flow Detector
title_full Photometric Determination of Iron in Pharmaceutical Formulations Using Double-Beam Direct Injection Flow Detector
title_fullStr Photometric Determination of Iron in Pharmaceutical Formulations Using Double-Beam Direct Injection Flow Detector
title_full_unstemmed Photometric Determination of Iron in Pharmaceutical Formulations Using Double-Beam Direct Injection Flow Detector
title_sort photometric determination of iron in pharmaceutical formulations using double-beam direct injection flow detector
publisher MDPI AG
series Molecules
issn 1420-3049
publishDate 2021-07-01
description In this work, an innovative, flow-through, double-beam, photometric detector with direct injection of the reagents (double-DID) was used for the first time for the determination of iron in pharmaceuticals. For stable measurement of the absorbance, double paired emission-detection LED diodes and a log ratio precision amplifier have been applied. The detector was integrated with the system of solenoid micro-pumps. The micro-pumps helped to reduce the number of reagents used and are responsible for precise solution dispensing and propelling. The flow system is characterized by a high level of automation. The total iron was determined as a Fe(II) with photometric detection using 1,10-phenanthroline as a complexing agent. The optimum conditions of the propose analytical procedure were established and the method was validated. The calibration graph was linear in the range of 1 to 30 mg L<sup>−1</sup>. The limit of detection (LOD) was 0.5 mg L<sup>−1</sup>. The throughput of the method was 90 samples/hour. The repeatability of the method expressed as the relative standard deviation (R.S.D.) was 2% (n = 10). The method was characterized by very low consumption of reagents and samples (20 μL each) and a small amount of waste produced (about 540 µL per analysis). The proposed flow method was successfully applied for determination of iron in pharmaceutical products. The results were in good agreement with those obtained using the manual UV-Vis spectrophotometry and with values claimed by the manufacturers. The flow system worked very stably and was insensitive to bubbles appearing in the system.
topic pharmaceutical analysis
iron determination
spectrophotometry
flow analysis
direct injection detector
multi-pumping flow system
url https://www.mdpi.com/1420-3049/26/15/4498
work_keys_str_mv AT stanislawakoronkiewicz photometricdeterminationofironinpharmaceuticalformulationsusingdoublebeamdirectinjectionflowdetector
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