Page 28 - Environmental Nanotechnology Applications and Impacts of Nanomaterials
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14 Nanotechnology as a Tool for Sustainability
4. Commission, E., Opinion on the appropriateness of existing methodologies to assess the
potential risks associated with engineered and adventitious products of nanotechnologies.
2005, Scientific Committee on Emerging and Newly Identified Health Risks, pp. 41–58.
5. Limbach, L.K., et al., Oxide nanoparticle uptake in human lung fibroblasts: Effects of
particle size, agglomeration, and diffusion at low concentrations. Environmental
Science and Technology, 2005. 39(23):9370–9376.
6. Lam, C.W., et al., Pulmonary toxicity of single-wall carbon nanotubes in mice 7 and
90 days after intratracheal installation. Toxicological Sciences, 2004. 77:126–134.
7. Warheit, D.B., et al., Comparative pulmonary toxicity assessment of single-wall carbon
nanotubes in rates. Toxicological Sciences, 2004. 77:117–125.
8. Oberdörster, E., Manufactured nanomaterials (fullerenes, C 60 ) induce oxidative stress
in the brain of juvenile largemouth bass. Environmental Health Perspectives, 2004.
112(10):1058–1062.
9. Xia, T., et al., Comparison of the abilities of ambient and manufactured nanoparticles
to induce cellular toxicity according to an oxidative stress paradigm. Nano Letters,
2006. 6(8):1794–1807.
10. Auffan, M., et al., In vitro interactions between DMSA-coated maghemite nanoparticles
and human fibroblasts: A physicochemical and cyto-genotoxical study. Environmental
Science and Technology, 2006. 40(14):4367–4373.
11. Lecoanet, H., J. Bottero, and M. Wiesner, Laboratory assessment of the mobility of
nanomaterials in porous media. Environmental Science and Technology, 2004.
38(16):4377–4382.
12. Lecoanet, H., and M. Wiesner, Velocity effects on fullerene and oxide nanoparticle
deposition in porous media. Environmental Science and Technology, 2004.
38(16):4377–4382.
13. Drexler, K.E., Engines of destruction, in engines of creation: The Coming Era of
Nanotechnology. 1986, Anchor Books: New York, NY.
14. Elimelech, M., and C.R. O’Melia, Effect of particle size on collision efficiency in the
deposition of brownian particles with electrostatic energy barriers. Langmuir, 1990.
6:1153–1163.
15. Tobiason, J.E., and C.R. O’Melia, Physicochemical aspects of particle removal in depth
filtration. Journal of American Water Works Association, 1988. 80(12):54–64.
16. Veerapaneni, S., and M.R. Wiesner, Role of suspension polydispersivity in granular
media filtration. Journal of Environmental Engineers, ASCE, 1993. 119(1):172–190.
17. Kallay, N., and S. Zalac, Stability of nanodispersions: A model for kinetics of aggre-
gation of nanoparticles. Journal of Colloid and Interface Science, 2002. 253:70–76.
18. Kasermann, F., and C. Kempf, Buckminsterfullerene and photodynamic inactivation
of viruses. Reviews in Medical Virology, 1998. 8(3):143–151.
19. Nakamura, E., et al., Biological activity of water-soluble fullerenes. Structural depend-
ence of DNA cleavage, cytotoxicity, and enzyme inhibitory activities including HIV-
protease inhibition. Bulletin of the Chemical Society of Japan, 1996. 69(8):2143–2151.
20. Tabata, Y., Y. Murakami, and Y. Ikada, Antitumor effect of poly(ethylene glycol) mod-
ified fullerene. Fullerene Science and Technology, 1997. 5(5):989–1007.
21. Tabata, Y., Y. Murakami, and Y. Ikada, Photodynamic effect of polyethylene glycol-
modified fullerene on tumor. Japanese Journal of Cancer Research, 1997. 88:1108–1116.
22. Tokuyama, H., S. Yamago, and E. Nakamura, Photoinduced biochemical activity of
fullerene carboxylic acid. Journal of the American Chemical Society, 1993.
115:7918–7919.
23. Tsao, N., et al., Inhibition of Escherichia coli-induced meningitis by carboxyfullerence.
Antimicrobial Agents and Chemotherapy, 1999. 43:2273–2277.
24. Sayes, C.M., et al., The differential cytotoxicity of water-soluble fullerenes. Nano
Letters, 2004. 4(10):1881–1887.
25. Jia, G., et al., Cytotoxicity of carbon nanomaterials: Single-wall nanotube, multi-wall
nanotube, and fullerene, Environmental Science and Technology, 2005.
39(5):1378–1383.
26. Robichaud, C.O., et al., Relative risk analysis of several manufactured nanomaterials:
An insurance industry context. Environmental Science and Technology, 2005.
39(22):8985–8994.