Department of Environmental Health and Engineering, Johns Hopkins University , Baltimore, Maryland 21218-2686, United States.
State Key Laboratory of Pollution Control and Resource Reuse, School of the Environment, Nanjing University , Nanjing, Jiangsu 210023, China.
Environ Sci Technol. 2017 Jun 20;51(12):6821-6828. doi: 10.1021/acs.est.7b00132. Epub 2017 Jun 2.
Heteroaggregation of graphene oxide (GO) with nanometer- and micrometer-sized hematite colloids, which are naturally present in aquatic systems, is investigated in this study. The heteroaggregation rates between GO and hematite nanoparticles (HemNPs) were quantified by dynamic light scattering, while the heteroaggregation between GO and micrometer-sized hematite particles (HemMPs) was examined through batch adsorption and sedimentation experiments. The heteroaggregation rates of GO with HemNPs first increased and then decreased with increasing GO/HemNP mass concentration ratios. The conformation of GO-HemNP heteroaggregates at different GO/HemNP mass concentration ratios was observed through transmission electron microscopy imaging. Initially, GO underwent heteroaggregation with HemNPs through electrostatic attraction to form primary heteroaggregates, which were further bridged by GO to form bigger clusters. At high GO/HemNP mass concentration ratios where GO outnumbered HemNPs, heteroaggregation resulted in the formation of stable GO-HemNP nanohybrids that have a critical coagulation concentration of 308 mM NaCl at pH 5.2. In the case of HemMPs, GO adsorbed readily on the microparticles and, at an optimal GO/HemMP ratio of ∼0.002, the sedimentation of HemMPs was the fastest, most likely because of the formation of "electrostatic patches" leading to favorable aggregation of the microparticles.
本研究考察了自然存在于水系统中的氧化石墨烯(GO)与纳米级和微米级赤铁矿胶体的异质聚集。通过动态光散射定量了 GO 与赤铁矿纳米颗粒(HemNPs)之间的异质聚集速率,而通过批量吸附和沉降实验研究了 GO 与微米级赤铁矿颗粒(HemMPs)之间的异质聚集。GO 与 HemNPs 的异质聚集速率随着 GO/HemNP 质量浓度比的增加先增加后减少。通过透射电子显微镜成像观察了不同 GO/HemNP 质量浓度比下 GO-HemNP 异质聚集物的形态。最初,GO 通过静电吸引与 HemNPs 发生异质聚集,形成初级异质聚集体,然后通过 GO 进一步桥接形成更大的簇。在 GO 数量超过 HemNPs 的高 GO/HemNP 质量浓度比下,异质聚集导致形成稳定的 GO-HemNP 纳米杂化物,在 pH 值为 5.2 时,其临界聚沉浓度为 308mM NaCl。对于 HemMPs,GO 很容易吸附在微粒子上,在最佳的 GO/HemMP 比约为 0.002 时,微粒子的沉降速度最快,这很可能是由于形成了“静电斑”,有利于微粒子的聚集。