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A Novel Strategy for the Detection and Quantification of Nanoplastics by Single Particle Inductively Coupled Plasma Mass Spectrometry (ICP-MS)

Analytical Chemistry 2020 152 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 45 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Joanna Szpunar, Javier Jiménez‐Lamana, Lucile Marigliano, Lucile Marigliano, Javier Jiménez‐Lamana, Lucile Marigliano, Lucile Marigliano, Stéphanie Reynaud Stéphanie Reynaud Joanna Szpunar, Javier Jiménez‐Lamana, Lucile Marigliano, Bruno Grassl, Bruno Grassl, Bruno Grassl, Bruno Grassl, Bruno Grassl, Bruno Grassl, Bruno Grassl, Javier Jiménez‐Lamana, Joanna Szpunar, Stéphanie Reynaud Joanna Szpunar, Bruno Grassl, Lucile Marigliano, Stéphanie Reynaud Javier Jiménez‐Lamana, Javier Jiménez‐Lamana, Joanna Szpunar, Bruno Grassl, Joachim Allouche, Joanna Szpunar, Javier Jiménez‐Lamana, Stéphanie Reynaud Stéphanie Reynaud Stéphanie Reynaud Stéphanie Reynaud Stéphanie Reynaud Bruno Grassl, Javier Jiménez‐Lamana, Bruno Grassl, Joanna Szpunar, Bruno Grassl, Bruno Grassl, Bruno Grassl, Bruno Grassl, Stéphanie Reynaud Stéphanie Reynaud Bruno Grassl, Bruno Grassl, Bruno Grassl, Bruno Grassl, Bruno Grassl, Bruno Grassl, Joanna Szpunar, Javier Jiménez‐Lamana, Javier Jiménez‐Lamana, Javier Jiménez‐Lamana, Javier Jiménez‐Lamana, Javier Jiménez‐Lamana, Stéphanie Reynaud Bruno Grassl, Stéphanie Reynaud Stéphanie Reynaud Stéphanie Reynaud Bruno Grassl, Stéphanie Reynaud Bruno Grassl, Bruno Grassl, Bruno Grassl, Bruno Grassl, Bruno Grassl, Javier Jiménez‐Lamana, Bruno Grassl, Javier Jiménez‐Lamana, Bruno Grassl, Javier Jiménez‐Lamana, Bruno Grassl, Joanna Szpunar, Bruno Grassl, Stéphanie Reynaud Stéphanie Reynaud Stéphanie Reynaud Stéphanie Reynaud Stéphanie Reynaud Stéphanie Reynaud Joachim Allouche, Joachim Allouche, Stéphanie Reynaud Stéphanie Reynaud Bruno Grassl, Stéphanie Reynaud Joanna Szpunar, Javier Jiménez‐Lamana, Bruno Grassl, Bruno Grassl, Bruno Grassl, Bruno Grassl, Joanna Szpunar, Bruno Grassl, Bruno Grassl, Stéphanie Reynaud Stéphanie Reynaud Stéphanie Reynaud Bruno Grassl, Stéphanie Reynaud Stéphanie Reynaud Stéphanie Reynaud Stéphanie Reynaud Stéphanie Reynaud Stéphanie Reynaud Bruno Grassl, Bruno Grassl, Bruno Grassl, Stéphanie Reynaud Stéphanie Reynaud Stéphanie Reynaud

Summary

A new analytical method was developed to detect and count individual nanoplastic particles in drinking water and river water using gold nanoparticles as tags and single particle ICP-MS for detection. The method can detect nanoplastics as small as 135 nm at environmentally relevant concentrations, providing a sensitive new tool for tracking nanoplastic contamination.

Polymers
Study Type Environmental

A method for the detection and quantification of nanoplastics (NPTs) at environmentally relevant concentrations was developed. It is based on conjugating nanoplastics with functionalized metal (Au)-containing nanoparticles (NPs), thus making them detectable by highly sensitive inductively coupled plasma mass spectrometry (ICP-MS) operated in single particle (SP) mode. The selectivity of the method was achieved by the coupling of negatively charged carboxylate groups present at the surface of nanoplastics with a positively charged gelatin attached to the custom-synthesized AuNPs. The adsorbed Au produced a SP-ICP-MS signal allowing the counting of individual nanoplastic particles, and hence their accurate quantification (<5% error). Polystyrene (PS) particle models with controlled surface functionalization mimicking the nanoplastics formed during natural degradation of plastic debris were used for the method development. The nanoplastic number concentration quantification limit was calculated at 8.4 × 10<sup>5</sup> NPTs L<sup>-1</sup> and the calibration graph was linear up to 3.5 × 10<sup>8</sup> NPTs L<sup>-1</sup>. The method was applied to the analysis of nanoplastics of up to 1 μm in drinking, tap, and river water. The minimum detectable and quantifiable size depended on the degree of functionalization and the surface available for labeling. For a fully functionalized nanoplastic, the lower size detectable by this strategy is reported as 135 nm. In this study, authors use the recommendation for the definition of nanoplastics as plastic particles with sizes ranging between 1 nm and 1 μm, although it has not been accepted by a dedicated organization.

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