Influence of Electrolytes and Humic Acid on Aggregation Behavior of C60 Nanoparticles in Aquatic System

Article Preview

Abstract:

The aggregation kinetics of C60 nanoparticles have been investigated over a wide range of monovalent and divalent electrolyte concentrations by employing time-resolved dynamic light scattering (DLS). The results showed that the presence of electrolyte made a dramatic decrease in the surface zeta potential and increase in the particle size. The aggregation kinetics of C60 nanoparticles exhibited reaction-limited and diffusion-limited regimes, which was found to be consistent with the classic Derjaguin-Landau-Verwey-Overbeek (DLVO) theory of colloidal stability. The critical coagulation concentration (CCC) values of C60 nanoparticles were estimated as 321mM Na+, 295mM K+, 9.6mM Ca2+ and 6.7mM Mg2+, which were far higher than the electrolyte concentrations in natural water. The enhanced C60 stability in the presence of humic acid was attributable to steric repulsion. Therefore C60 nanoparticles can be relatively stable in typical aquatic environments.

You might also be interested in these eBooks

Info:

Periodical:

Pages:

48-51

Citation:

Online since:

October 2013

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2014 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

* - Corresponding Author

[1] A. Nel, T. Xia, L. Madler, and N. Li: Science. Vol. 311 (2006), p.622.

Google Scholar

[2] B. Nowack, T. D. Bucheli: Environ. Pollut. Vol. 150 (2007), p.5.

Google Scholar

[3] J. Venturini, E. Koudoumas, and S. Couris: Mater. Chem. Vol. 12 (2002), p. (2071).

Google Scholar

[4] S. Bosi, T. Da Ros, G. Spalluto, and M. Prato: Med. Chem. Vol. 38 (2003), p.913.

Google Scholar

[5] R. S. Ruoff, D. S. Tse, R. Malhotra, and D. C. Lorents: Phys. Chem. Vol. 97 (1993), p.3379.

Google Scholar

[6] G. V. Andrievsky, M. V. Kosevich, and O. M. Vovk: Journal of the Chemical Society, Chemical Communications, Vol. 12 (1995), p.1281.

Google Scholar

[7] X. Cheng, A. T. Kan, and M. B. Tomson: Journal of Chemical and Engineering Data. Vol. 49 (2004), p.675.

Google Scholar

[8] D. Y. Lyon, L. K. Adams, and J. C. Falkner: Environ. Sci. Technol. Vol. 40 (2006), p.4360.

Google Scholar

[9] S. Deguchi, R. G. Alargova, and K. Tsujii: Langmuir. Vol. 17 (2001), p.6013.

Google Scholar

[10] H. Holthoff, S. U. Egelhaaf, and M. Borkovec: Langmuir. Vol. 12 (1996), p.5541.

Google Scholar

[11] K. L. Chen, M. Elimelech: Langmuir. Vol. 22 (2006), p.10994.

Google Scholar

[12] K. L. Chen, S. E. Mylon, and M. Elimelech: Environ. Sci. Technol. Vol. 40 (2006), p.1516.

Google Scholar