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Field-Portable Microplastic Sensing in Aqueous Environments: A Perspective on Emerging Techniques

Microplastics (MPs) have been found in aqueous environments ranging from rural ponds and lakes to the deep ocean. Despite the ubiquity of MPs, our ability to characterize MPs in the environment is limited by the lack of technologies for rapidly and accurately identifying and quantifying MPs. Althoug...

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Autores principales: Blevins, Morgan G., Allen, Harry L., Colson, Beckett C., Cook, Anna-Marie, Greenbaum, Alexandra Z., Hemami, Sheila S., Hollmann, Joseph, Kim, Ernest, LaRocca, Ava A., Markoski, Kenneth A., Miraglia, Peter, Mott, Vienna L., Robberson, William M., Santos, Jose A., Sprachman, Melissa M., Swierk, Patricia, Tate, Steven, Witinski, Mark F., Kratchman, Louis B., Michel, Anna P. M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8160859/
https://www.ncbi.nlm.nih.gov/pubmed/34069517
http://dx.doi.org/10.3390/s21103532
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author Blevins, Morgan G.
Allen, Harry L.
Colson, Beckett C.
Cook, Anna-Marie
Greenbaum, Alexandra Z.
Hemami, Sheila S.
Hollmann, Joseph
Kim, Ernest
LaRocca, Ava A.
Markoski, Kenneth A.
Miraglia, Peter
Mott, Vienna L.
Robberson, William M.
Santos, Jose A.
Sprachman, Melissa M.
Swierk, Patricia
Tate, Steven
Witinski, Mark F.
Kratchman, Louis B.
Michel, Anna P. M.
author_facet Blevins, Morgan G.
Allen, Harry L.
Colson, Beckett C.
Cook, Anna-Marie
Greenbaum, Alexandra Z.
Hemami, Sheila S.
Hollmann, Joseph
Kim, Ernest
LaRocca, Ava A.
Markoski, Kenneth A.
Miraglia, Peter
Mott, Vienna L.
Robberson, William M.
Santos, Jose A.
Sprachman, Melissa M.
Swierk, Patricia
Tate, Steven
Witinski, Mark F.
Kratchman, Louis B.
Michel, Anna P. M.
author_sort Blevins, Morgan G.
collection PubMed
description Microplastics (MPs) have been found in aqueous environments ranging from rural ponds and lakes to the deep ocean. Despite the ubiquity of MPs, our ability to characterize MPs in the environment is limited by the lack of technologies for rapidly and accurately identifying and quantifying MPs. Although standards exist for MP sample collection and preparation, methods of MP analysis vary considerably and produce data with a broad range of data content and quality. The need for extensive analysis-specific sample preparation in current technology approaches has hindered the emergence of a single technique which can operate on aqueous samples in the field, rather than on dried laboratory preparations. In this perspective, we consider MP measurement technologies with a focus on both their eventual field-deployability and their respective data products (e.g., MP particle count, size, and/or polymer type). We present preliminary demonstrations of several prospective MP measurement techniques, with an eye towards developing a solution or solutions that can transition from the laboratory to the field. Specifically, experimental results are presented from multiple prototype systems that measure various physical properties of MPs: pyrolysis-differential mobility spectroscopy, short-wave infrared imaging, aqueous Nile Red labeling and counting, acoustophoresis, ultrasound, impedance spectroscopy, and dielectrophoresis.
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spelling pubmed-81608592021-05-29 Field-Portable Microplastic Sensing in Aqueous Environments: A Perspective on Emerging Techniques Blevins, Morgan G. Allen, Harry L. Colson, Beckett C. Cook, Anna-Marie Greenbaum, Alexandra Z. Hemami, Sheila S. Hollmann, Joseph Kim, Ernest LaRocca, Ava A. Markoski, Kenneth A. Miraglia, Peter Mott, Vienna L. Robberson, William M. Santos, Jose A. Sprachman, Melissa M. Swierk, Patricia Tate, Steven Witinski, Mark F. Kratchman, Louis B. Michel, Anna P. M. Sensors (Basel) Perspective Microplastics (MPs) have been found in aqueous environments ranging from rural ponds and lakes to the deep ocean. Despite the ubiquity of MPs, our ability to characterize MPs in the environment is limited by the lack of technologies for rapidly and accurately identifying and quantifying MPs. Although standards exist for MP sample collection and preparation, methods of MP analysis vary considerably and produce data with a broad range of data content and quality. The need for extensive analysis-specific sample preparation in current technology approaches has hindered the emergence of a single technique which can operate on aqueous samples in the field, rather than on dried laboratory preparations. In this perspective, we consider MP measurement technologies with a focus on both their eventual field-deployability and their respective data products (e.g., MP particle count, size, and/or polymer type). We present preliminary demonstrations of several prospective MP measurement techniques, with an eye towards developing a solution or solutions that can transition from the laboratory to the field. Specifically, experimental results are presented from multiple prototype systems that measure various physical properties of MPs: pyrolysis-differential mobility spectroscopy, short-wave infrared imaging, aqueous Nile Red labeling and counting, acoustophoresis, ultrasound, impedance spectroscopy, and dielectrophoresis. MDPI 2021-05-19 /pmc/articles/PMC8160859/ /pubmed/34069517 http://dx.doi.org/10.3390/s21103532 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 Perspective
Blevins, Morgan G.
Allen, Harry L.
Colson, Beckett C.
Cook, Anna-Marie
Greenbaum, Alexandra Z.
Hemami, Sheila S.
Hollmann, Joseph
Kim, Ernest
LaRocca, Ava A.
Markoski, Kenneth A.
Miraglia, Peter
Mott, Vienna L.
Robberson, William M.
Santos, Jose A.
Sprachman, Melissa M.
Swierk, Patricia
Tate, Steven
Witinski, Mark F.
Kratchman, Louis B.
Michel, Anna P. M.
Field-Portable Microplastic Sensing in Aqueous Environments: A Perspective on Emerging Techniques
title Field-Portable Microplastic Sensing in Aqueous Environments: A Perspective on Emerging Techniques
title_full Field-Portable Microplastic Sensing in Aqueous Environments: A Perspective on Emerging Techniques
title_fullStr Field-Portable Microplastic Sensing in Aqueous Environments: A Perspective on Emerging Techniques
title_full_unstemmed Field-Portable Microplastic Sensing in Aqueous Environments: A Perspective on Emerging Techniques
title_short Field-Portable Microplastic Sensing in Aqueous Environments: A Perspective on Emerging Techniques
title_sort field-portable microplastic sensing in aqueous environments: a perspective on emerging techniques
topic Perspective
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8160859/
https://www.ncbi.nlm.nih.gov/pubmed/34069517
http://dx.doi.org/10.3390/s21103532
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