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生物污垢、金属吸附和聚集与微塑料在分层水库中的下沉有关。

Biofouling, metal sorption and aggregation are related to sinking of microplastics in a stratified reservoir.

机构信息

Department of Lake Research, Helmholtz Centre for Environmental Research, Brückstraße 3a, 39114, Magdeburg, Germany.

Helmholtz Centre for Environmental Research, Permoserstraße 15, 04318, Leipzig, Germany.

出版信息

Water Res. 2020 Jun 1;176:115748. doi: 10.1016/j.watres.2020.115748. Epub 2020 Mar 25.

Abstract

Microplastic particles entering aquatic systems are rapidly colonized by microbial biofilms. The presence of microbial biomass may cause sinking of particles and as a consequence prevent their transport to the oceans. We studied microbial colonization of different polymer particles exposed in the epi-, meta- and hypolimnion of a freshwater reservoir during late summer for 47 days. Parameters measured included biofilm formation, metal sorption and sinking velocities. Microbial biofilms contained bacteria, cyanobacteria and algae as well as inorganic particles such as iron oxides. Regardless of biofilm thickness and biovolumes of different biofilm constituents, single polyethylene (PE) particles stayed buoyant, whereas the sinking velocity of single polystyrene (PS) and polyethylene terephthalate (PET) particles did not change significantly compared to initial values. During exposition, a mixing event occurred, by which anoxic, iron-rich water from the hypolimnion was mixed with water from upper layers. This induced aggregation and sinking of hypolimnetic PE particles together with organic matter, cyanobacteria colonies and iron minerals.

摘要

微塑料颗粒进入水生系统后,会迅速被微生物生物膜所占据。微生物生物量的存在可能导致颗粒下沉,从而阻止它们向海洋运输。我们研究了在夏末的 47 天里,淡水水库的上、中、下分层中不同聚合物颗粒的微生物定植情况。测量的参数包括生物膜形成、金属吸附和下沉速度。微生物生物膜中含有细菌、蓝藻和藻类以及氧化铁等无机颗粒。无论生物膜厚度和不同生物膜成分的生物量如何,单个聚乙烯(PE)颗粒都保持漂浮状态,而单个聚苯乙烯(PS)和聚对苯二甲酸乙二醇酯(PET)颗粒的下沉速度与初始值相比没有明显变化。在暴露过程中,发生了一次混合事件,将缺氧、富铁的底层水与上层水混合。这导致了底层 PE 颗粒与有机物、蓝藻菌落和铁矿物一起聚集和下沉。

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