College of Environmental Science and Engineering/Ministry of Education Key Laboratory of Pollution Processes and Environmental Criteria/Tianjin Key Laboratory of Environmental Remediation and Pollution Control, Nankai University, Wei Jin Road 94, Tianjin 300071, China.
Environ Sci Technol. 2012 Jul 3;46(13):7230-8. doi: 10.1021/es301234m. Epub 2012 Jun 15.
Understanding subsurface transport of fullerene nanoparticles (nC(60)) is of critical importance for the benign use and risk management of C(60). We examined the effects of several important environmental factors on nC(60) transport in saturated porous media. Decreasing flow velocity from approximately 10 to 1 m/d had little effect on nC(60) transport in Ottawa sand (mainly pure quartz), but significantly inhibited the transport in Lula soil (a sandy, low-organic-matter soil). The difference was attributable to the smaller grain size, more irregular and rougher shape, and greater heterogeneity of Lula soil. Increasing ionic strength and switching background solution from NaCl to CaCl(2) enhanced the deposition of nC(60) in both sand and soil columns, but the effects were more significant for soil. This was likely because the clay minerals (and possibly soil organic matter) in soil responded to changes of ionic strength and species differently than quartz. Anions in the mobile phase had little effect on nC(60) transport, and fulvic acid in the mobile phase (5.0 mg/L) had a small effect in the presence of 0.5 mM Ca(2+). A two-site transport model that takes into account both the blocking-affected attachment process and straining effects can effectively model the breakthrough of nC(60).
了解富勒烯纳米颗粒(nC(60))的地下运移对于 C(60) 的良性使用和风险管理至关重要。我们研究了几个重要环境因素对 nC(60)在饱和多孔介质中传输的影响。将流速从约 10 降低到 1 m/d 对 Ottawa 砂(主要是纯石英)中 nC(60)的传输几乎没有影响,但显著抑制了 Lula 土壤(一种砂质、低有机物质土壤)中的传输。差异归因于 Lula 土壤的粒径更小、形状更不规则和更粗糙、以及更大的非均质性。增加离子强度并将背景溶液从 NaCl 切换为 CaCl(2) 增强了 nC(60)在砂柱和土柱中的沉积,但对土壤的影响更为显著。这可能是因为土壤中的粘土矿物(和可能的土壤有机质)对离子强度和种类的变化的响应不同于石英。移动相中阴离子对 nC(60)的传输几乎没有影响,而移动相中(5.0 mg/L)的腐殖酸在存在 0.5 mM Ca(2+)时影响较小。一个考虑到阻塞影响附着过程和应变效应的双位点传输模型可以有效地模拟 nC(60)的穿透。