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Surface properties and changes in morphology of microplastics exposed <italic>in-situ</italic> to Chinese coastal wetlands

Chinese Science Bulletin (Chinese Version) 2020 7 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 35 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Qian Zhou, Chen Tu, Qian Zhou, Lianzhen Li Lianzhen Li Chen Tu, Lianzhen Li Haibo Zhang, Qian Zhou, Qian Zhou, Chen Tu, Chen Tu, Haibo Zhang, Haibo Zhang, Chen Tu, Chen Tu, Yongming Luo, Chen Tu, Haibo Zhang, Chen Tu, Li Xu, Lianzhen Li Li Xu, Yongming Luo, Chen Tu, Yongming Luo, Qian Zhou, Qian Zhou, Qian Zhou, Qian Zhou, Chen Tu, Haibo Zhang, Haibo Zhang, Haibo Zhang, Chen Tu, Chen Tu, Chen Tu, Chen Tu, Chen Tu, Lianzhen Li Lianzhen Li Chen Tu, Lianzhen Li Lianzhen Li Lianzhen Li Chen Tu, Chen Tu, Chen Tu, Chen Tu, Chenjie Zhang, Chen Tu, Chen Tu, Chen Tu, Chen Tu, Chen Tu, Chen Tu, Chen Tu, Haibo Zhang, Chen Tu, Chen Tu, Qian Zhou, Qian Zhou, Qian Zhou, Yuan Li, Chenjie Zhang, Yongming Luo, Li Xu, Yongming Luo, Yongming Luo, Haibo Zhang, Haibo Zhang, Haibo Zhang, Haibo Zhang, Lianzhen Li Lianzhen Li Lianzhen Li Haibo Zhang, Qian Zhou, Lianzhen Li Lianzhen Li Yongming Luo, Lianzhen Li Li Xu, Chenjie Zhang, Chenjie Zhang, Haibo Zhang, Li Xu, Chen Tu, Li Xu, Haibo Zhang, Li Xu, Chen Tu, Qian Zhou, Qian Zhou, Qian Zhou, Qian Zhou, Chuancheng Fu, Chuancheng Fu, Chen Tu, Chen Tu, Chenjie Zhang, Chenjie Zhang, Li Xu, Qian Zhou, Lianzhen Li Lianzhen Li Lianzhen Li Chen Tu, Lianzhen Li Yongming Luo, Yongming Luo, Yongming Luo, Haibo Zhang, Li Xu, Li Xu, Li Xu, Li Xu, Li Xu, Yuan Li, Yuan Li, Yuan Li, Qian Zhou, Qian Zhou, Chuancheng Fu, Chuancheng Fu, Chen Tu, Chuancheng Fu, Haibo Zhang, Haibo Zhang, Chen Tu, Chen Tu, Chen Tu, Li Xu, Haibo Zhang, Li Xu, Haibo Zhang, Li Xu, Chen Tu, Chen Tu, Li Xu, Li Xu, Li Xu, Li Xu, Chen Tu, Yuan Li, Haibo Zhang, Chen Tu, Yuan Li, Yuan Li, Yongming Luo, Haibo Zhang, Lianzhen Li Yongming Luo, Chen Tu, Yongming Luo, Kuanxu Xiong, Chen Tu, Haibo Zhang, Li Xu, Qian Zhou, Li Xu, Lianzhen Li Chen Tu, Haibo Zhang, Haibo Zhang, Haibo Zhang, Yuan Li, Qian Zhou, Chen Tu, Yuan Li, Chuancheng Fu, Chuancheng Fu, Haibo Zhang, Haibo Zhang, Kuanxu Xiong, Chen Tu, Qian Zhou, Haibo Zhang, Li Xu, Lianzhen Li Chuancheng Fu, Haibo Zhang, Haibo Zhang, Li Xu, Yongming Luo, Yongming Luo, Lianzhen Li Chen Tu, Chen Tu, Chen Tu, Chen Tu, Lianzhen Li Chen Tu, Yuan Li, Haibo Zhang, Chen Tu, Li Xu, Li Xu, Chen Tu, Haibo Zhang, Chen Tu, Chen Tu, Chen Tu, Yongming Luo, Haibo Zhang, Chen Tu, Chen Tu, Yongming Luo, Chen Tu, Yongming Luo, Chuancheng Fu, Chen Tu, Haibo Zhang, Li Xu, Chen Tu, Li Xu, Li Xu, Haibo Zhang, Chen Tu, Chen Tu, Li Xu, Yongming Luo, Chen Tu, Li Xu, Li Xu, Li Xu, Li Xu, Yongming Luo, Li Xu, Yongming Luo, Yongming Luo, Chen Tu, Yongming Luo, Yongming Luo, Lianzhen Li Kuanxu Xiong, Lianzhen Li Chen Tu, Kuanxu Xiong, Kuanxu Xiong, Kuanxu Xiong, Haibo Zhang, Haibo Zhang, Chen Tu, Chen Tu, Yongming Luo, Qian Zhou, Li Xu, Li Xu, Li Xu, Li Xu, Yongming Luo, Haibo Zhang, Li Xu, Chen Tu, Haibo Zhang, Yongming Luo, Chen Tu, Lianzhen Li Qian Zhou, Haibo Zhang, Yongming Luo, Yongming Luo, Yongming Luo, Haibo Zhang, Haibo Zhang, Lianzhen Li Haibo Zhang, Yongming Luo, Chen Tu, Yongming Luo, Yongming Luo, Chen Tu, Lianzhen Li

Summary

This study examined how microplastics change physically and chemically after being exposed in real coastal wetland environments, finding significant surface oxidation and biofouling after 90 days. Understanding how plastic particles age in natural settings is important because weathered microplastics may behave differently in organisms compared to pristine particles used in lab studies.

Polymers
Study Type Environmental

<p indent=0mm>Coastal wetlands are key areas of accumulation of microplastics. However, until now only a few studies have focused on the surface properties and morphological changes in microplastics in the real coastal wetland environment. Here, two typical biogeographic coastal soils, the Yellow River Estuary salt marsh wetland in the temperate zone and the Beibu Bay mangrove wetland in the subtropical zone, were selected for study. Polystyrene foams and polyethylene films were used and exposed within two coastal wetlands sites through <italic>in situ</italic> soil burial (underground exposure) and surface placement (above-ground exposure). The samples were sampled after 6, 12, 18 and <sc>24 months</sc> of exposure to reveal the characteristics of the surface properties and morphological changes in microplastics in typical wetlands from the southern and northern biogeographic coastal zones. The surface morphology, microstructures and attached materials were observed using scanning electron microscopy using an energy dispersive spectrometer. Surface properties of the microplastics, i.e. the surface roughness, specific surface area, pore size distribution, functional groups and hydrophobicity, were analyzed by using atomic force microscopy, a surface area analyzer, a mercury porosimeter, Fourier transform infrared spectrometry and a contact angle meter. The surface morphology of the polystyrene foams in the Beibu Bay mangrove wetland exhibited more pits and holes than those in the Yellow River Estuary salt marsh wetland. The polystyrene foams exposed above-ground in the Beibu Bay mangrove wetland showed embrittlement and exfoliation after <sc>18 months,</sc> while those exposed underground did not show such features. The specific surface areas of the polystyrene foams and the polyethylene films in the Yellow River Estuary salt marsh wetland were higher than those in the Beibu Bay mangrove wetland. The pore distributions on the surfaces of the two microplastic types mainly comprised macropores and mesopores. However, the porosity of the polyethylene film in the Yellow River Estuary salt marsh wetland was slightly higher than in the Beibu Bay mangrove wetland. The porosities in both regions were higher than in the original control samples. In terms of carbonyl index, rates of change in the Yellow River Estuary salt marsh wetland were higher than those in the Beibu Bay mangrove wetland. The surface hydrophobicity of the polyethylene film in the two regions declined with increasing exposure time. The changes in surface morphology of the polystyrene foams were more rapid than those in the polyethylene films, but the degree of change in specific surface area of the polyethylene films was greater than in the case of the polystyrene foams. It can be concluded that the surface properties and changes in morphology of microplastics in the coastal soil environment are related to multiple factors including the types and conditions of the wetlands, types of microplastics, exposure mode and exposure time. However, the specific mechanisms of these surface changes require further study. In summary, this study provides a scientific basis for research on the chemical processes of the micro-interfaces on the microplastic surfaces and environmental behavior and risk assessment of microplastics in the Chinese coastal zone.

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