Lu Xiao, Hu Hongwei, Li Jiawei, Li Jiangpeng, Wang Lijuan, Liu Lili, Tang Yuanyuan
State Environmental Protection Key Laboratory of Integrated Surface Water-Groundwater Pollution Control, School of Environmental Science and Engineering, College of Engineering, Southern University of Science and Technology, Shenzhen 518055, PR China.
State Environmental Protection Key Laboratory of Integrated Surface Water-Groundwater Pollution Control, School of Environmental Science and Engineering, College of Engineering, Southern University of Science and Technology, Shenzhen 518055, PR China; College of the Environment and Ecology, Xiamen University, Xiamen, Fujian 361102, PR China.
Sci Total Environ. 2023 Feb 10;859(Pt 1):160227. doi: 10.1016/j.scitotenv.2022.160227. Epub 2022 Nov 15.
The coexistence of minerals, heavy metals and microplastics in sediment has been widely reported, while the interactions between minerals and heavy metals may be affected by the presence of microplastics. Therefore, to elucidate the effect of microplastics on the interactions between heavy metals and sediment minerals, this study conducted a series of experiments using polystyrene (PS) microplastics, Pb/Cr/Cd and ferrihydrite (Fh). The presence of PS microplastics with ferrihydrite (Fh-MPs200, mass ratio of ferrihydrite to PS of 200:1) improved the adsorption capacity of ferrihydrite, especially with an increase of 36 % for Pb. Morphological characterization demonstrated that the nano-ferrihydrite particles were dispersed on the surface of the PS microplastics, increasing the available reaction sites of the ferrihydrite particles. Furthermore, the results of zeta potential and pH effect showed that the reduction in electrostatic repulsion after adding PS was another critical reason for the increase in Pb adsorption by Fh-MP200. As a result, the presence of PS microplastics enhanced the complexation of Pb ions and the hydroxyl groups on the ferrihydrite surface. This study demonstrated that the presence of microplastics in the sedimentary environment can alter the dispersion and surface properties of minerals, thereby affecting the accumulation and transportation of heavy metals at the water-sediment interface.
沉积物中矿物质、重金属和微塑料的共存已被广泛报道,而矿物质与重金属之间的相互作用可能会受到微塑料存在的影响。因此,为了阐明微塑料对重金属与沉积物矿物质之间相互作用的影响,本研究使用聚苯乙烯(PS)微塑料、铅/铬/镉和水铁矿(Fh)进行了一系列实验。水铁矿与PS微塑料(Fh-MPs200,水铁矿与PS的质量比为200:1)共存提高了水铁矿的吸附能力,尤其是对铅的吸附能力提高了36%。形态表征表明,纳米水铁矿颗粒分散在PS微塑料表面,增加了水铁矿颗粒的可用反应位点。此外,zeta电位和pH值影响结果表明,添加PS后静电斥力的降低是Fh-MP200对铅吸附增加的另一个关键原因。结果,PS微塑料的存在增强了铅离子与水铁矿表面羟基的络合作用。本研究表明,沉积环境中微塑料的存在会改变矿物质的分散和表面性质,从而影响水-沉积物界面处重金属的积累和运输。