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Photon-induced redox chemistry on pyrite promotes photoaging of polystyrene microplastics

The Science of The Total Environment 2022 58 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.
Qian Zhang, Xue Bai, Shan Zhong Xue Bai, Xiaohua Shu, Lishan Zhang, Lishan Zhang, Lishan Zhang, Lishan Zhang, Lishan Zhang, Lishan Zhang, Xue Bai, Qian Zhang, Qian Zhang, Xiaohua Shu, Xue Bai, Weishi Ma, Xue Bai, Xue Bai, Xue Bai, Xue Bai, Weishi Ma, Xue Bai, Xue Bai, Xue Bai, Xue Bai, Lishan Zhang, Shan Zhong Xue Bai, Qian Zhang, Shan Zhong Shan Zhong Lishan Zhang, Xue Bai, Qian Zhang, Shan Zhong Qian Zhang, Lishan Zhang, Lishan Zhang, Lishan Zhang, Lishan Zhang, Lishan Zhang, Qian Zhang, Qian Zhang, Shan Zhong Xue Bai, Xiaohua Shu, Shan Zhong Qian Zhang, Lishan Zhang, Xiaohua Shu, Xiaohua Shu, Lishan Zhang, Xiaohua Shu, Xue Bai, Lishan Zhang, Qian Zhang, Shan Zhong Xue Bai, Qian Zhang, Lishan Zhang, Qian Zhang, Lishan Zhang, Shan Zhong

Summary

Pyrite, a common mineral in lake and river sediments, was found to accelerate photoaging of polystyrene microplastics through redox reactions when exposed to sunlight, generating reactive oxygen species that oxidize the plastic surface. The finding identifies mineral-plastic interactions as an important but underappreciated driver of microplastic weathering in natural sediment environments.

Polymers
Study Type Environmental

The mineral particles in sediment could affect polystyrene microplastics (PS-MPs) prosperity through physical and chemical interactions. Pyrite with semiconducting properties is the most abundant metal sulfide mineral in the sediments of lake and river mouths. The widespread sunlight and the coexistence of PS-MPs and pyrite in lake or river water due to frequently water fluctuation is a typical photoaging environment for PS-MPs. The oxidation of reactive oxygen species (ROS) generated from pyrite would degrade the PS-MPs in theory. However, researches about photoaging of PS-MPs mediated by pyrite are paucity. Here, we investigated the photoaging process of PS-MPs affected by pyrite under simulated light condition. Remarkably, surface morphology of PS-MPs mediated by pyrite was broken. And the oxygen-containing functional group of PS-MPs increased, as revealed by Fourier Transform infrared spectroscopy (FTIR), X-ray photoelectron spectroscopy (XPS) and contact angle test. 2D-COS analysis showed photoaging of PS-MPs with pyrite happened in the following order: C-H > C=C > C=O > C-O > OH. The photoaging of PS-MPs and transformation of intermediate were accelerated by ROS (O·, ·OH and O) generated from pyrite. The free ·OH may play a major role in the promotion. Because the interfacial ROS reactions on pyrite surface were limited due to the electrostatic repulsion between pyrite and PS-MPs. The study explored photoaging behavior of PS-MPs accelerated by pyrite, which could be helpful for understanding photon-induced redox chemistry on PS-MPs via widespread sulfide metal minerals on earth's surface and providing further information to assess potential risks of PS-MPs.

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