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Direct Observation of the Release of Nanoplastics from Commercially Recycled Plastics with Correlative Raman Imaging and Scanning Electron Microscopy

ACS Nano 2020 132 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.
Wen Zhang, Zhiqiang Dong, Ling Zhu, Yuanzhang Hou, Yuping Qiu

Summary

Using a combined Raman imaging and scanning electron microscopy technique, researchers directly observed and chemically confirmed the release of PVC nanoparticles as small as 360 nm from recycled PVC powder. The study provides the first direct evidence that recycled plastic products can shed nanoplastics into the environment.

Polymers

Nanoplastics (NPs), mainly originated from weathering of microplastics, are ubiquitous throughout the world. However, the environmentally released NPs are still under debate due to the lack of direct proof for the chemical identification of individual nanoparticles. Here, we show an observational evidence of release of heterogeneous NPs from recycled PVC powders (RPP) using a nondestructive analytical method, namely, correlative Raman imaging and scanning electron (RISE) microscopy. The technology achieves direct chemical identification of individual nanoparticles on RPP surface that are as small as 360 nm including nano-PVC and nano-CaCO3 in complexes with pigments. After washing and filtering through a 1 μm poly(ether sulfone) filter, we clearly distinguish nano-PVC from the other components in an air-dried filtrate. Furthermore, the automated 2D mapping of RISE enables the acquisition of the 2D chemical information on a selected area (e.g., 5 μm × 5 μm) and the display of the different components of nanoparticle aggregates without colloidal separation. Our findings give direct evidence and detailed insights in the potential release of nanoplastics from the recycled plastic products. The RISE method will help us intuitively understand the origin, occurrence, and fate of NPs in the environment.

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