Key Laboratory of Integrated Regulation and Resources Development on Shallow Lakes of Ministry of Education, College of Environment, Hohai University, Nanjing 210098, People's Republic of China.
Key Laboratory of Integrated Regulation and Resources Development on Shallow Lakes of Ministry of Education, College of Environment, Hohai University, Nanjing 210098, People's Republic of China.
Ecotoxicol Environ Saf. 2018 Feb;148:89-96. doi: 10.1016/j.ecoenv.2017.10.022. Epub 2017 Oct 12.
The behaviors of nanoparticles rely on the aqueous condition such as natural organic matter (NOM). Therefore the presence of NOM would influence the interaction of nanoparticles with other substances possibly. Here, microcystin-LR (MC-LR) adsorption on iron oxide nanoparticles (IONPs) was studied in an aqueous solution with different types of NOM, including extracellular polymeric substances (EPS) from cyanobacteria and alginic acid sodium salt (AASS) from brown algae. Results revealed that EPS played an important role in stabilizing IONPs and in the toxin adsorption efficiency. The stability of IONPs was heavily depended on the concentration and type of NOM, which can affect the surface charge of IONPs significantly in solution. The enhanced stability of IONPs was due to the electrostatic interactions. Adsorption kinetics and isotherm studies confirmed that NOM can affect the IONPs' adsorption efficiency, and pseudo-second-order kinetics better explained this process. The removal efficiency for MC-LR decreased in the presence of NOM (Control > EPS-M1 > AASS > EPS-M9), indicating that NOM and MC-LR compete for limited adsorption sites. The presence of NOM in a eutrophic environment stabilized the IONPs while inhibiting the MC-LR removal efficiency. This investigation emphasized the negative effect of cyanobacterial EPS on the removal of microcystins when using magnetic separation technology. And this results could also be used to model the transportation of iron minerals carrying toxic substances in aqueous environment.
纳米颗粒的行为依赖于水相条件,如天然有机物(NOM)。因此,NOM 的存在可能会影响纳米颗粒与其他物质的相互作用。在这里,研究了在含有不同类型 NOM 的水溶液中,微囊藻毒素-LR(MC-LR)在氧化铁纳米颗粒(IONPs)上的吸附,包括蓝藻的细胞外聚合物物质(EPS)和褐藻的海藻酸钠盐(AASS)。结果表明,EPS 在稳定 IONPs 和提高毒素吸附效率方面起着重要作用。IONPs 的稳定性严重依赖于 NOM 的浓度和类型,这会显著影响溶液中 IONPs 的表面电荷。IONPs 的增强稳定性归因于静电相互作用。吸附动力学和等温线研究证实,NOM 可以影响 IONPs 的吸附效率,准二级动力学更好地解释了这一过程。在 NOM 存在的情况下,MC-LR 的去除效率降低(对照> EPS-M1 > AASS > EPS-M9),表明 NOM 和 MC-LR 竞争有限的吸附位点。富营养环境中 NOM 的存在稳定了 IONPs,同时抑制了 MC-LR 的去除效率。这项研究强调了在使用磁分离技术去除微囊藻毒素时,蓝藻 EPS 的负面影响。并且这些结果也可用于模拟在水环境中携带有毒物质的铁矿物的运输。