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Progressive Cellular Architecture in Microscale Gas Chromatography for Broad Chemical Analyses

Gas chromatography is widely used to identify and quantify volatile organic compounds for applications ranging from environmental monitoring to homeland security. We investigate a new architecture for microfabricated gas chromatography systems that can significantly improve the range, speed, and eff...

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Autores principales: Liao, Weilin, Zhao, Xiangyu, Lu, Hsueh-Tsung, Byambadorj, Tsenguun, Qin, Yutao, Gianchandani, Yogesh B.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8124901/
https://www.ncbi.nlm.nih.gov/pubmed/33946637
http://dx.doi.org/10.3390/s21093089
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author Liao, Weilin
Zhao, Xiangyu
Lu, Hsueh-Tsung
Byambadorj, Tsenguun
Qin, Yutao
Gianchandani, Yogesh B.
author_facet Liao, Weilin
Zhao, Xiangyu
Lu, Hsueh-Tsung
Byambadorj, Tsenguun
Qin, Yutao
Gianchandani, Yogesh B.
author_sort Liao, Weilin
collection PubMed
description Gas chromatography is widely used to identify and quantify volatile organic compounds for applications ranging from environmental monitoring to homeland security. We investigate a new architecture for microfabricated gas chromatography systems that can significantly improve the range, speed, and efficiency of such systems. By using a cellular approach, it performs a partial separation of analytes even as the sampling is being performed. The subsequent separation step is then rapidly performed within each cell. The cells, each of which contains a preconcentrator and separation column, are arranged in progression of retentiveness. While accommodating a wide range of analytes, this progressive cellular architecture (PCA) also provides a pathway to improving energy efficiency and lifetime by reducing the need for heating the separation columns. As a proof of concept, a three-cell subsystem (PCA3mv) has been built; it incorporates a number of microfabricated components, including preconcentrators, separation columns, valves, connectors, and a carrier gas filter. The preconcentrator and separation column of each cell are monolithically implemented as a single chip that has a footprint of 1.8 × 5.2 cm(2). This subsystem also incorporates two manifold arrays of microfabricated valves, each of which has a footprint of 1.3 × 1.4 cm(2). Operated together with a commercial flame ionization detector, the subsystem has been tested against polar and nonpolar analytes (including alkanes, alcohols, aromatics, and phosphonate esters) over a molecular weight range of 32–212 g/mol and a vapor pressure range of 0.005–231 mmHg. The separations require an average column temperature of 63–68 °C within a duration of 12 min, and provide separation resolutions >2 for any two homologues that differ by one methyl group.
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spelling pubmed-81249012021-05-17 Progressive Cellular Architecture in Microscale Gas Chromatography for Broad Chemical Analyses Liao, Weilin Zhao, Xiangyu Lu, Hsueh-Tsung Byambadorj, Tsenguun Qin, Yutao Gianchandani, Yogesh B. Sensors (Basel) Article Gas chromatography is widely used to identify and quantify volatile organic compounds for applications ranging from environmental monitoring to homeland security. We investigate a new architecture for microfabricated gas chromatography systems that can significantly improve the range, speed, and efficiency of such systems. By using a cellular approach, it performs a partial separation of analytes even as the sampling is being performed. The subsequent separation step is then rapidly performed within each cell. The cells, each of which contains a preconcentrator and separation column, are arranged in progression of retentiveness. While accommodating a wide range of analytes, this progressive cellular architecture (PCA) also provides a pathway to improving energy efficiency and lifetime by reducing the need for heating the separation columns. As a proof of concept, a three-cell subsystem (PCA3mv) has been built; it incorporates a number of microfabricated components, including preconcentrators, separation columns, valves, connectors, and a carrier gas filter. The preconcentrator and separation column of each cell are monolithically implemented as a single chip that has a footprint of 1.8 × 5.2 cm(2). This subsystem also incorporates two manifold arrays of microfabricated valves, each of which has a footprint of 1.3 × 1.4 cm(2). Operated together with a commercial flame ionization detector, the subsystem has been tested against polar and nonpolar analytes (including alkanes, alcohols, aromatics, and phosphonate esters) over a molecular weight range of 32–212 g/mol and a vapor pressure range of 0.005–231 mmHg. The separations require an average column temperature of 63–68 °C within a duration of 12 min, and provide separation resolutions >2 for any two homologues that differ by one methyl group. MDPI 2021-04-29 /pmc/articles/PMC8124901/ /pubmed/33946637 http://dx.doi.org/10.3390/s21093089 Text en © 2021 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
Liao, Weilin
Zhao, Xiangyu
Lu, Hsueh-Tsung
Byambadorj, Tsenguun
Qin, Yutao
Gianchandani, Yogesh B.
Progressive Cellular Architecture in Microscale Gas Chromatography for Broad Chemical Analyses
title Progressive Cellular Architecture in Microscale Gas Chromatography for Broad Chemical Analyses
title_full Progressive Cellular Architecture in Microscale Gas Chromatography for Broad Chemical Analyses
title_fullStr Progressive Cellular Architecture in Microscale Gas Chromatography for Broad Chemical Analyses
title_full_unstemmed Progressive Cellular Architecture in Microscale Gas Chromatography for Broad Chemical Analyses
title_short Progressive Cellular Architecture in Microscale Gas Chromatography for Broad Chemical Analyses
title_sort progressive cellular architecture in microscale gas chromatography for broad chemical analyses
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8124901/
https://www.ncbi.nlm.nih.gov/pubmed/33946637
http://dx.doi.org/10.3390/s21093089
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