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Modular 3D-printed fluorometer/photometer for determination of iron(ii), caffeine, and ciprofloxacin in pharmaceutical samples

The demand for the development of portable and low-cost analytical devices has encouraged studies employing additive manufacturing techniques, such as 3D-printing. This method can be used to produce components such as printed electrodes, photometers, and fluorometers for low-cost systems that provid...

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Autores principales: Lamarca, Rafaela Silva, Silva, João Pedro, Varoni dos Santos, João Paulo, Ayala-Durán, Saidy Cristina, de Lima Gomes, Paulo Clairmont Feitosa
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10108832/
https://www.ncbi.nlm.nih.gov/pubmed/37077256
http://dx.doi.org/10.1039/d3ra01281f
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author Lamarca, Rafaela Silva
Silva, João Pedro
Varoni dos Santos, João Paulo
Ayala-Durán, Saidy Cristina
de Lima Gomes, Paulo Clairmont Feitosa
author_facet Lamarca, Rafaela Silva
Silva, João Pedro
Varoni dos Santos, João Paulo
Ayala-Durán, Saidy Cristina
de Lima Gomes, Paulo Clairmont Feitosa
author_sort Lamarca, Rafaela Silva
collection PubMed
description The demand for the development of portable and low-cost analytical devices has encouraged studies employing additive manufacturing techniques, such as 3D-printing. This method can be used to produce components such as printed electrodes, photometers, and fluorometers for low-cost systems that provide advantages including low sample volume, reduced chemical waste, and easy coupling with LED-based optics and other instrumental devices. In the present work, a modular 3D-printed fluorometer/photometer was designed and applied for the determination of caffeine (CAF), ciprofloxacin (CIP), and Fe(ii) in pharmaceutical samples. All the plastic parts were printed separately by a 3D printer, using Tritan as the plastic material (black color). The final size of the modular 3D-printed device was 12 × 8 cm. The radiation sources were light-emitting diodes (LEDs), while a light dependent resistor (LDR) was used as a photodetector. The analytical curves obtained for the device were: y = 3.00 × 10(−4) [CAF] + 1.00 and R(2) = 0.987 for caffeine; y = 6.90 × 10(−3) [CIP] − 3.39 × 10(−2) and R(2) = 0.991 for ciprofloxacin; and y = 1.12 × 10(−1) [Fe(ii)] + 1.26 × 10(−2) and R(2) = 0.998 for iron(ii). The results obtained using the developed device were compared with reference methods, with no statistically significant differences observed. The 3D-printed device was composed of moveable parts, providing flexibility for adaptation and application as a photometer or fluorometer, by only switching the photodetector position. The LED could also be easily switched, permitting application of the device for different purposes. The cost of the device, including the printing and electronic components, was lower than US$10. The use of 3D-printing enables the development of portable instruments for use in remote locations with a lack of research resources.
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spelling pubmed-101088322023-04-18 Modular 3D-printed fluorometer/photometer for determination of iron(ii), caffeine, and ciprofloxacin in pharmaceutical samples Lamarca, Rafaela Silva Silva, João Pedro Varoni dos Santos, João Paulo Ayala-Durán, Saidy Cristina de Lima Gomes, Paulo Clairmont Feitosa RSC Adv Chemistry The demand for the development of portable and low-cost analytical devices has encouraged studies employing additive manufacturing techniques, such as 3D-printing. This method can be used to produce components such as printed electrodes, photometers, and fluorometers for low-cost systems that provide advantages including low sample volume, reduced chemical waste, and easy coupling with LED-based optics and other instrumental devices. In the present work, a modular 3D-printed fluorometer/photometer was designed and applied for the determination of caffeine (CAF), ciprofloxacin (CIP), and Fe(ii) in pharmaceutical samples. All the plastic parts were printed separately by a 3D printer, using Tritan as the plastic material (black color). The final size of the modular 3D-printed device was 12 × 8 cm. The radiation sources were light-emitting diodes (LEDs), while a light dependent resistor (LDR) was used as a photodetector. The analytical curves obtained for the device were: y = 3.00 × 10(−4) [CAF] + 1.00 and R(2) = 0.987 for caffeine; y = 6.90 × 10(−3) [CIP] − 3.39 × 10(−2) and R(2) = 0.991 for ciprofloxacin; and y = 1.12 × 10(−1) [Fe(ii)] + 1.26 × 10(−2) and R(2) = 0.998 for iron(ii). The results obtained using the developed device were compared with reference methods, with no statistically significant differences observed. The 3D-printed device was composed of moveable parts, providing flexibility for adaptation and application as a photometer or fluorometer, by only switching the photodetector position. The LED could also be easily switched, permitting application of the device for different purposes. The cost of the device, including the printing and electronic components, was lower than US$10. The use of 3D-printing enables the development of portable instruments for use in remote locations with a lack of research resources. The Royal Society of Chemistry 2023-04-17 /pmc/articles/PMC10108832/ /pubmed/37077256 http://dx.doi.org/10.1039/d3ra01281f Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Lamarca, Rafaela Silva
Silva, João Pedro
Varoni dos Santos, João Paulo
Ayala-Durán, Saidy Cristina
de Lima Gomes, Paulo Clairmont Feitosa
Modular 3D-printed fluorometer/photometer for determination of iron(ii), caffeine, and ciprofloxacin in pharmaceutical samples
title Modular 3D-printed fluorometer/photometer for determination of iron(ii), caffeine, and ciprofloxacin in pharmaceutical samples
title_full Modular 3D-printed fluorometer/photometer for determination of iron(ii), caffeine, and ciprofloxacin in pharmaceutical samples
title_fullStr Modular 3D-printed fluorometer/photometer for determination of iron(ii), caffeine, and ciprofloxacin in pharmaceutical samples
title_full_unstemmed Modular 3D-printed fluorometer/photometer for determination of iron(ii), caffeine, and ciprofloxacin in pharmaceutical samples
title_short Modular 3D-printed fluorometer/photometer for determination of iron(ii), caffeine, and ciprofloxacin in pharmaceutical samples
title_sort modular 3d-printed fluorometer/photometer for determination of iron(ii), caffeine, and ciprofloxacin in pharmaceutical samples
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10108832/
https://www.ncbi.nlm.nih.gov/pubmed/37077256
http://dx.doi.org/10.1039/d3ra01281f
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