Kinetics of polystyrene nanoplastic deposition on SiO2 and Al2O3 surfaces: Ionic strength effects

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초록

Nanoplastic pollution is an emerging environmental threat to the critical zone. The transport of nanoplastic particles in subsurface environments can be determined mainly by soil minerals because they provide surfaces that interact with nanoplastic particles. However, the interactions between mineral surfaces and nanoplastics are poorly understood. In this study, the deposition kinetics of polystyrene-nanoplastic particles onto representative oxide surfaces SiO2 and Al2O3 at circumneutral pH were investigated using a quartz crystal microbalance, with variations in the ionic strength (0.1-100 mM) of the well-dispersed nanoplastic particles suspension. While polystyrene-nanoplastic particles deposited minimally on the SiO2 surface at an ionic strength of < 100 mM (similar to 10 ng/cm(2)), substantial deposition occurred at 100 mM (3.7 +/- 0.4 mu g/cm(2)). On the Al2O3 surface, a significant amount of polystyrene-nanoplastic particle was deposited from the lowest ionic strength (4.5 +/- 0.8 mu g/cm(2)). The deposition mass at 100 mM NaCl was two times higher (7.2 +/- 0.2 mu g/cm(2)) than on the SiO2 surface, while the deposition rates were similar between the two surfaces (10-15 Hz/min). Our results indicate that alumina most likely exerts a stronger influence than quartz on the transport of nanoplastic particles in soils and groundwater aquifers. The deposition kinetics strongly depends on the mineral surface and solution ionic strength, and these quantitative results can serve as validation data in developing transport modeling of nanoplastic in subsurface environments.

키워드

NanoplasticsAl2O3 surfaceSiO2 surfacequartz crystal microbalanceionic strengthGROUNDWATERNANOPARTICLESAGGREGATIONMOBILITYFORCE
제목
Kinetics of polystyrene nanoplastic deposition on SiO2 and Al2O3 surfaces: Ionic strength effects
저자
Myeong, HyeonahKim, JuhyeokLee, Jin-YongKwon, Kideok D.
DOI
10.1177/00368504221150430
발행일
2023-01
유형
Article
저널명
Science Progress
106
1