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Realization of Microfluidic Preconcentrator for N-Pentane Traces Impurities from the Gaseous Media

In this paper, we present the work of designing and fabricating a new generation of microelectromechanical systems (MEMS) based microfluidic preconcentrators (MFP) for volatile organic compounds (VOCs) quantification. The main objective of this work is to quantify the n-pentane impurities using MFP...

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Autores principales: Platonov, Vladimir, Sharma, Prachi, Ledyaev, Mikhail, Anikina, Maria A., Djuzhev, Nikolay Alekseevich, Chinenkov, Maksim Yuryevich, Tripathi, Nishant, Parveen, Sania, Ahmad, Rafiq, Pavelyev, Vladimir, Melaibari, Ammar A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9696541/
https://www.ncbi.nlm.nih.gov/pubmed/36431577
http://dx.doi.org/10.3390/ma15228090
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author Platonov, Vladimir
Sharma, Prachi
Ledyaev, Mikhail
Anikina, Maria A.
Djuzhev, Nikolay Alekseevich
Chinenkov, Maksim Yuryevich
Tripathi, Nishant
Parveen, Sania
Ahmad, Rafiq
Pavelyev, Vladimir
Melaibari, Ammar A.
author_facet Platonov, Vladimir
Sharma, Prachi
Ledyaev, Mikhail
Anikina, Maria A.
Djuzhev, Nikolay Alekseevich
Chinenkov, Maksim Yuryevich
Tripathi, Nishant
Parveen, Sania
Ahmad, Rafiq
Pavelyev, Vladimir
Melaibari, Ammar A.
author_sort Platonov, Vladimir
collection PubMed
description In this paper, we present the work of designing and fabricating a new generation of microelectromechanical systems (MEMS) based microfluidic preconcentrators (MFP) for volatile organic compounds (VOCs) quantification. The main objective of this work is to quantify the n-pentane impurities using MFP for sample preparation. The MFP was analyzed using Hewlett-Packard 5890 gas chromatography, having a flame ionization detector under isothermal conditions. The proposed MFP system includes two-microfluidic preconcentrators for continuous action and a system of four 3/2 solenoid valves with a control unit. Microfluidic preconcentrators were placed on metal plates and have circular channels filled with Al(2)O(3) (50 μm), n-octane ResSil-C (80/100 mesh) sorbents of one nature and are hyphenated with the Peltier elements to regulate the temperature of sorption and desorption. The n-pentane quantitative determination was carried out using a calibration plot of gas mixtures on a successive dilution with the nitrogen. This study shows that the microfluidic preconcentrator system with Al(2)O(3) and n-Octane ResSil-C sorbent concentrates the n-pentane traces up to 41 to 47 times from the gas mixture with the standard deviation of ≤5%. It has been observed that the n-octane ResSil-C based MFC shows very fast response (<5 min) and stability up to 300 cycles.
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spelling pubmed-96965412022-11-26 Realization of Microfluidic Preconcentrator for N-Pentane Traces Impurities from the Gaseous Media Platonov, Vladimir Sharma, Prachi Ledyaev, Mikhail Anikina, Maria A. Djuzhev, Nikolay Alekseevich Chinenkov, Maksim Yuryevich Tripathi, Nishant Parveen, Sania Ahmad, Rafiq Pavelyev, Vladimir Melaibari, Ammar A. Materials (Basel) Article In this paper, we present the work of designing and fabricating a new generation of microelectromechanical systems (MEMS) based microfluidic preconcentrators (MFP) for volatile organic compounds (VOCs) quantification. The main objective of this work is to quantify the n-pentane impurities using MFP for sample preparation. The MFP was analyzed using Hewlett-Packard 5890 gas chromatography, having a flame ionization detector under isothermal conditions. The proposed MFP system includes two-microfluidic preconcentrators for continuous action and a system of four 3/2 solenoid valves with a control unit. Microfluidic preconcentrators were placed on metal plates and have circular channels filled with Al(2)O(3) (50 μm), n-octane ResSil-C (80/100 mesh) sorbents of one nature and are hyphenated with the Peltier elements to regulate the temperature of sorption and desorption. The n-pentane quantitative determination was carried out using a calibration plot of gas mixtures on a successive dilution with the nitrogen. This study shows that the microfluidic preconcentrator system with Al(2)O(3) and n-Octane ResSil-C sorbent concentrates the n-pentane traces up to 41 to 47 times from the gas mixture with the standard deviation of ≤5%. It has been observed that the n-octane ResSil-C based MFC shows very fast response (<5 min) and stability up to 300 cycles. MDPI 2022-11-15 /pmc/articles/PMC9696541/ /pubmed/36431577 http://dx.doi.org/10.3390/ma15228090 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Platonov, Vladimir
Sharma, Prachi
Ledyaev, Mikhail
Anikina, Maria A.
Djuzhev, Nikolay Alekseevich
Chinenkov, Maksim Yuryevich
Tripathi, Nishant
Parveen, Sania
Ahmad, Rafiq
Pavelyev, Vladimir
Melaibari, Ammar A.
Realization of Microfluidic Preconcentrator for N-Pentane Traces Impurities from the Gaseous Media
title Realization of Microfluidic Preconcentrator for N-Pentane Traces Impurities from the Gaseous Media
title_full Realization of Microfluidic Preconcentrator for N-Pentane Traces Impurities from the Gaseous Media
title_fullStr Realization of Microfluidic Preconcentrator for N-Pentane Traces Impurities from the Gaseous Media
title_full_unstemmed Realization of Microfluidic Preconcentrator for N-Pentane Traces Impurities from the Gaseous Media
title_short Realization of Microfluidic Preconcentrator for N-Pentane Traces Impurities from the Gaseous Media
title_sort realization of microfluidic preconcentrator for n-pentane traces impurities from the gaseous media
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9696541/
https://www.ncbi.nlm.nih.gov/pubmed/36431577
http://dx.doi.org/10.3390/ma15228090
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