School of Energy and Environment, Anhui University of Technology, Maanshan, Anhui 243002, China.
School of Energy and Environment, Anhui University of Technology, Maanshan, Anhui 243002, China.
Sci Total Environ. 2023 Jul 15;882:163466. doi: 10.1016/j.scitotenv.2023.163466. Epub 2023 Apr 23.
Microplastics (MPs), as emerging contaminants can behave as carriers for heavy metals in the water environments. Although the adsorption performance of heavy metals on MPs has been widely investigated, the effects of humic acids (HA) on the adsorption have seldom been explored. The authors were compared the Pb(II) adsorption onto biofilm-developed polyvinyl chloride (Bio-PVC) MPs with Pb(II) adsorption onto virgin PVC MPs (V-PVC), and explored the relationship between surface characteristics and the adsorption properties in the coexistence of HA. Our results showed that due to a larger specific surface area and more oxygen containing groups, Bio-PVC had a larger adsorption capability with a value of 3.57 mg/g than original ones (1.85 mg/g) due to its huge specific surface area and more oxygen containing groups. Microbial community analysis showed that the predominate bacteria in biofilms as Proteobacteria, Acidobacteria, Cyanobacteria, Firmicutes, and Bacteroidetes. Notably, the Pb(II) adsorption onto the V-PVC surfaces was increased, but the adsorption capacities of Pb(II) on Bio-PVC were suppressed with increasing HA. With the co-existence of HA, the increasing complexation and electrostatic attraction had attributed to the increased Pb(II) adsorption ability on V-PVC. Except for its competitive ability, HA has a shield effect which decreases the sorption sites on Bio-PVC. Overall, our findings provide a better understanding of the HA effect on the adsorption mechanism of heavy metals onto MPs in aquatic ecosystems.
微塑料(MPs)作为新兴污染物,可以在水环境中作为重金属的载体。尽管重金属在 MPs 上的吸附性能已经得到了广泛的研究,但 HA 对吸附的影响却很少被探索。作者比较了生物膜形成聚氯乙烯(Bio-PVC) MPs 对 Pb(II)的吸附和原始聚氯乙烯 MPs(V-PVC)对 Pb(II)的吸附,并探讨了在 HA 共存时表面特性与吸附性能之间的关系。我们的结果表明,由于具有更大的比表面积和更多的含氧基团,Bio-PVC 的吸附能力比原始 PVC MPs(1.85mg/g)更大,达到 3.57mg/g。微生物群落分析表明,生物膜中的优势细菌为变形菌门、酸杆菌门、蓝藻门、厚壁菌门和拟杆菌门。值得注意的是,随着 HA 的增加,V-PVC 表面的 Pb(II)吸附增加,但 Bio-PVC 上 Pb(II)的吸附容量受到抑制。在 HA 共存的情况下,增加的络合作用和静电吸引导致 V-PVC 上 Pb(II)吸附能力的增加。除了竞争能力外,HA 还具有屏蔽作用,降低了 Bio-PVC 的吸附位点。总的来说,我们的研究结果提供了更好的理解,即 HA 对水生生态系统中 MPs 上重金属吸附机制的影响。