Electrochemical quantification of iodide ions in synthetic urine using silver nanoparticles: a proof-of-concept.

Typical urinary iodide concentrations range from 0.3 μM to 6.0 μM. The conventional analytical method is based on the Sandell-Kolthoff reaction. It involves the toxic reagent, arsenic acid, and a waiting time of 30 minutes for the iodide ions to reduce the cerium(iv) ions. In the presented work, an...

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Príomhchruthaitheoirí: Toh, H, Tschulik, K, Batchelor-McAuley, C, Compton, R
Formáid: Journal article
Teanga:English
Foilsithe / Cruthaithe: 2014
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author Toh, H
Tschulik, K
Batchelor-McAuley, C
Compton, R
author_facet Toh, H
Tschulik, K
Batchelor-McAuley, C
Compton, R
author_sort Toh, H
collection OXFORD
description Typical urinary iodide concentrations range from 0.3 μM to 6.0 μM. The conventional analytical method is based on the Sandell-Kolthoff reaction. It involves the toxic reagent, arsenic acid, and a waiting time of 30 minutes for the iodide ions to reduce the cerium(iv) ions. In the presented work, an alternative fast electrochemical method based on a silver nanoparticle modified electrode is proposed. Cyclic voltammetry was performed with a freshly modified electrode in presence of iodide ions and the voltammetric peaks corresponding to the oxidation of silver to silver iodide and the reverse reaction were recorded. The peak height of the reduction signal of silver iodide was used to plot a calibration line for the iodide ions. Two calibration plots for the iodide ions were obtained, one in 0.1 M sodium nitrate (a chloride-ion free environment to circumvent any interference from the other halides) and another in synthetic urine (which contains 0.2 M KCl). In both of the calibration plots, linear relationships were found between the reduction peak height and the iodide ion concentration of 0.3 μM to 6.0 μM. A slope of 1.46 × 10(-2) A M(-1) and a R(2) value of 0.999 were obtained for the iodide detection in sodium nitrate. For the synthetic urine experiments, a slope of 3.58 × 10(-3) A M(-1) and a R(2) value of 0.942 were measured. A robust iodide sensor with the potential to be developed into a point-of-care system has been validated.
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spelling oxford-uuid:d84dcab4-4ec5-4cfd-bc0d-b13059b7c8ef2022-03-27T08:47:21ZElectrochemical quantification of iodide ions in synthetic urine using silver nanoparticles: a proof-of-concept.Journal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:d84dcab4-4ec5-4cfd-bc0d-b13059b7c8efEnglishSymplectic Elements at Oxford2014Toh, HTschulik, KBatchelor-McAuley, CCompton, RTypical urinary iodide concentrations range from 0.3 μM to 6.0 μM. The conventional analytical method is based on the Sandell-Kolthoff reaction. It involves the toxic reagent, arsenic acid, and a waiting time of 30 minutes for the iodide ions to reduce the cerium(iv) ions. In the presented work, an alternative fast electrochemical method based on a silver nanoparticle modified electrode is proposed. Cyclic voltammetry was performed with a freshly modified electrode in presence of iodide ions and the voltammetric peaks corresponding to the oxidation of silver to silver iodide and the reverse reaction were recorded. The peak height of the reduction signal of silver iodide was used to plot a calibration line for the iodide ions. Two calibration plots for the iodide ions were obtained, one in 0.1 M sodium nitrate (a chloride-ion free environment to circumvent any interference from the other halides) and another in synthetic urine (which contains 0.2 M KCl). In both of the calibration plots, linear relationships were found between the reduction peak height and the iodide ion concentration of 0.3 μM to 6.0 μM. A slope of 1.46 × 10(-2) A M(-1) and a R(2) value of 0.999 were obtained for the iodide detection in sodium nitrate. For the synthetic urine experiments, a slope of 3.58 × 10(-3) A M(-1) and a R(2) value of 0.942 were measured. A robust iodide sensor with the potential to be developed into a point-of-care system has been validated.
spellingShingle Toh, H
Tschulik, K
Batchelor-McAuley, C
Compton, R
Electrochemical quantification of iodide ions in synthetic urine using silver nanoparticles: a proof-of-concept.
title Electrochemical quantification of iodide ions in synthetic urine using silver nanoparticles: a proof-of-concept.
title_full Electrochemical quantification of iodide ions in synthetic urine using silver nanoparticles: a proof-of-concept.
title_fullStr Electrochemical quantification of iodide ions in synthetic urine using silver nanoparticles: a proof-of-concept.
title_full_unstemmed Electrochemical quantification of iodide ions in synthetic urine using silver nanoparticles: a proof-of-concept.
title_short Electrochemical quantification of iodide ions in synthetic urine using silver nanoparticles: a proof-of-concept.
title_sort electrochemical quantification of iodide ions in synthetic urine using silver nanoparticles a proof of concept
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AT tschulikk electrochemicalquantificationofiodideionsinsyntheticurineusingsilvernanoparticlesaproofofconcept
AT batchelormcauleyc electrochemicalquantificationofiodideionsinsyntheticurineusingsilvernanoparticlesaproofofconcept
AT comptonr electrochemicalquantificationofiodideionsinsyntheticurineusingsilvernanoparticlesaproofofconcept