College of Environmental Science and Engineering/Tianjin Key Laboratory of Environmental Remediation and Pollution Control/Ministry of Education Key Laboratory of Pollution Processes and Environmental Criteria, Nankai University, Tianjin 300071, China.
Environ Sci Technol. 2011 Feb 15;45(4):1341-8. doi: 10.1021/es102316m. Epub 2011 Jan 21.
The potential environmental implications of buckminsterfullerene (C60) and its derivatives have received much attention. In this study, we investigated facilitated transport of 2,2',5,5'-polychlorinated biphenyl (PCB) and phenanthrene by nC60 (a stable aqueous-phase aggregate of C60) through two sandy soil columns. We found that low-level (from 1.55 to 12.8 mg/L) nC60 could significantly enhance the mobility of PCB and phenanthrene. However, none of the three model dissolved organic matters (DOMs)-a humic acid, a fulvic acid, and a bovine serum albumin-had a noticeable effect on the transport of PCB when these DOMs were present at concentrations equivalent to approximately 10-11 mg/L organic carbon. We propose that the contaminant-mobilizing ability of nC60 is a result of irreversible adsorption of a fraction of nC60-associated PCB/phenanthrene (whereas DOM-associated PCB is readily desorbable). Additionally, slow desorption kinetics of nC60-adsorbed PCB/phenanthrene is another possible mechanism. The findings in this study indicate that nC60 in the subsurface environment can greatly enhance the mobility of nonionic, highly hydrophobic organic contaminants, which typically exhibit very low mobility. Such effects should be taken into account when assessing the potential environmental risks of engineered carbonaceous nanomaterials.
富勒烯(C60)及其衍生物的潜在环境影响受到了广泛关注。在这项研究中,我们通过两个沙质土壤柱研究了 nC60(C60 的稳定水相聚集体)对 2,2',5,5'-多氯联苯(PCB)和菲的促进传输作用。我们发现,低浓度(从 1.55 到 12.8 mg/L)的 nC60 可以显著增强 PCB 和菲的迁移性。然而,当三种模型溶解有机物(DOM)-腐殖酸、富里酸和牛血清白蛋白-的浓度相当于约 10-11 mg/L 有机碳时,它们对 PCB 的传输均没有明显影响。我们提出,nC60 的污染物增溶能力是由于 nC60 相关的 PCB/菲(而 DOM 相关的 PCB 很容易解吸)的一部分发生不可逆吸附所致。此外,nC60 吸附的 PCB/菲的缓慢解吸动力学也是另一种可能的机制。本研究的结果表明,地下环境中的 nC60 可以极大地增强非离子型、高疏水性有机污染物的迁移性,这些污染物通常表现出非常低的迁移性。在评估工程碳质纳米材料的潜在环境风险时,应考虑到这些影响。