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A microfluidic chip enables fast analysis of water microplastics by optical spectroscopy.
Elsayed, Ahmed A; Erfan, Mazen; Sabry, Yasser M; Dris, Rachid; Gaspéri, Johnny; Barbier, Jean-Sébastien; Marty, Frédéric; Bouanis, Fatima; Luo, Shaobo; Nguyen, Binh T T; Liu, Ai-Qun; Tassin, Bruno; Bourouina, Tarik.
Afiliación
  • Elsayed AA; ESYCOM, CNRS UMR 9007, Univ. Gustave Eiffel, ESIEE Paris, 93162, Noisy-le-Grand, France.
  • Erfan M; ESYCOM, CNRS UMR 9007, Univ. Gustave Eiffel, ESIEE Paris, 93162, Noisy-le-Grand, France.
  • Sabry YM; ECE Department, Faculty of Engineering, Ain Shams University, 1 El-Sarayat St, Cairo, 11517, Egypt.
  • Dris R; ESYCOM, CNRS UMR 9007, Univ. Gustave Eiffel, ESIEE Paris, 93162, Noisy-le-Grand, France.
  • Gaspéri J; ECE Department, Faculty of Engineering, Ain Shams University, 1 El-Sarayat St, Cairo, 11517, Egypt.
  • Barbier JS; LEESU, ENPC UPEC, 77455, Marne-la-Vallee cedex, France.
  • Marty F; LEESU, ENPC UPEC, 77455, Marne-la-Vallee cedex, France.
  • Bouanis F; GERS-LEE Université Gustave Eiffel, IFSTTAR, 44344, Bouguenais, France.
  • Luo S; LEESU, ENPC UPEC, 77455, Marne-la-Vallee cedex, France.
  • Nguyen BTT; ESYCOM, CNRS UMR 9007, Univ. Gustave Eiffel, ESIEE Paris, 93162, Noisy-le-Grand, France.
  • Liu AQ; COSYS-LISIS, Univ Gustave Eiffel, IFSTTAR, 77454, Marne-la-Vallée, France.
  • Tassin B; Laboratory of Physics of Interfaces and Thin Films, UMR 7647 CNRS/ Ecole Polytechnique, 91128, IPParis, Palaiseau, France.
  • Bourouina T; ESYCOM, CNRS UMR 9007, Univ. Gustave Eiffel, ESIEE Paris, 93162, Noisy-le-Grand, France.
Sci Rep ; 11(1): 10533, 2021 05 18.
Article en En | MEDLINE | ID: mdl-34006979
ABSTRACT
Microplastics contaminating drinking water is a growing issue that has been the focus of a few recent studies, where a major bottleneck is the time-consuming analysis. In this work, a micro-optofluidic platform is proposed for fast quantification of microplastic particles, the identification of their chemical nature and size, especially in the 1-100 µm size range. Micro-reservoirs ahead of micro-filters are designed to accumulate all trapped solid particles in an ultra-compact area, which enables fast imaging and optical spectroscopy to determine the plastic nature and type. Furthermore, passive size sorting is implemented for splitting the particles according to their size range in different reservoirs. Besides, flow cytometry is used as a reference method for retrieving the size distribution of samples, where chemical nature information is lost. The proof of concept of the micro-optofluidic platform is validated using model samples where standard plastic particles of different size and chemical nature are mixed.

Texto completo: 1 Base de datos: MEDLINE Idioma: En Revista: Sci Rep Año: 2021 Tipo del documento: Article

Texto completo: 1 Base de datos: MEDLINE Idioma: En Revista: Sci Rep Año: 2021 Tipo del documento: Article