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稳定的水溶性更高阶富勒烯的制备与表征。

Preparation and characterization of stable aqueous higher-order fullerenes.

机构信息

Department of Civil and Environmental Engineering, University of South Carolina, Columbia, SC 29208, USA.

出版信息

Nanotechnology. 2012 Feb 10;23(5):055705. doi: 10.1088/0957-4484/23/5/055705. Epub 2012 Jan 11.

Abstract

Stable aqueous suspensions of nC₆₀ and individual higher fullerenes, i.e. C₇₀, C₇₆ and C₈₄, are prepared by a calorimetric modification of a commonly used liquid-liquid extraction technique. The energy requirement for synthesis of higher fullerenes has been guided by molecular-scale interaction energy calculations. Solubilized fullerenes show crystalline behavior by exhibiting lattice fringes in high resolution transmission electron microscopy images. The fullerene colloidal suspensions thus prepared are stable with a narrow distribution of cluster radii (42.7 ± 0.8 nm, 46.0 ± 14.0 nm, 60 ± 3.2 nm and 56.3 ± 1.1 nm for nC₆₀, nC₇₀, nC₇₆ and nC₈₄, respectively) as measured by time-resolved dynamic light scattering. The ζ-potential values for all fullerene samples showed negative surface potentials with similar magnitude ( - 38.6 ± 5.8 mV, - 39.1 ± 4.2 mV, - 38.9 ± 5.8 mV and - 41.7 ± 5.1 mV for nC₆₀, nC₇₀, nC₇₆ and nC₈₄, respectively), which provide electrostatic stability to the colloidal clusters. This energy-based modified solubilization technique to produce stable aqueous fullerenes will likely aid in future studies focusing on better applicability, determination of colloidal properties, and understanding of environmental fate, transport and toxicity of higher-order fullerenes.

摘要

通过对常用液-液萃取技术的热量测量改进,制备了 nC₆₀和单个更高阶富勒烯(即 C₇₀、C₇₆和 C₈₄)的稳定水相悬浮液。更高阶富勒烯的合成能量需求由分子尺度相互作用能计算指导。在高分辨率透射电子显微镜图像中,显示晶格条纹,表明溶解的富勒烯表现出晶体行为。通过时间分辨动态光散射测量,所制备的富勒烯胶体悬浮液具有窄的团簇半径分布(nC₆₀、nC₇₀、nC₇₆和 nC₈₄的分别为 42.7 ± 0.8nm、46.0 ± 14.0nm、60 ± 3.2nm 和 56.3 ± 1.1nm),表现出稳定性。所有富勒烯样品的 ζ-电势值均显示出相似大小的负表面电势(nC₆₀、nC₇₀、nC₇₆和 nC₈₄的分别为 -38.6 ± 5.8mV、-39.1 ± 4.2mV、-38.9 ± 5.8mV 和 -41.7 ± 5.1mV),为胶体簇提供了静电稳定性。这种基于能量的改进增溶技术可用于制备稳定的水性富勒烯,这可能有助于未来的研究,重点关注更好的适用性、胶体性质的确定以及对高阶富勒烯的环境归宿、传输和毒性的理解。

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