Chemical Engineering

Quality and Complete project materials for all departments



Nanotechnology is a rapidly growing industry concerned with the fabrication of materials and products at the nanoscale (1 – 100 nm). The increased surface area to volume ratio of nanomaterials relative to larger particles or bulk materials significantly alters the physico-­‐chemical properties of these materials and remains an active area of research and product development. (Moore 2006; Nel et al. 2006; Buzea et al. 2007) Nanomaterials can be found in a wide ran

Material Code



Hyman, M.; Russell, S.; Ely, R.; Williamson, K.; Arp; D. Inhibition, inactivation, and recovery of ammonia-­‐oxidizing activity in cometabolism of trichloroethylene and Nitrosomonas europaea. Appl. Environ. Microbiol. 1995, 61 (4), 1480-­‐1487. Kahn, S.; Mukherjee, N.; Chandrasekaran. Impact of exopolysaccharides on the stability of silver nanoparticles in water. Water Res. 2011, 45, 5184-­‐5190. Kim, B; Park, C.; Murayama, M.; Hochella, M. Discovery and characterization of silver sulfide nanoparticles in final sewage sludge products. Environ. Sci. Technol. 2010, 44 (19), 7509-­‐7514. Kong, H. and Jang, J. One-­‐step fabrication of silver nanoparticle embedded polymer nanofibers by radical mediated dispersion polymerization. Chem. Commun. 2006, 3101-­‐3012. Lauchnor, E.; Radniecki, T.; Semprini, L. Inhibition and gene expression of Nitrosomonas europaea biofilms exposed to phenol and toluene. Biotechnol. Bioeng. 2011, 108 (4), 750-­‐757. Lauchnor, E. and Semprini, L. Inhibition of phenol on the rates of ammonia oxidation by Nitrosomonas europaea grown under batch, continuous fed, and biofilm conditions. Water Research. 2013, 10.1016/j.watres.2013.04.052. Li, W.; Xie, X.; Shi, Q.; Duan, S.; Ouyang, Y.; Chen, Y. Antibacterial effect of silver nanoparticles on Staphylococcus aureus. Biometals. 2011, 24, 135-­‐141. Li, X.; Lenhart, J.; Walker, H. Dissolution-­‐accompanied aggregation kinetics of silver nanoparticles. Langmuir. 2010, 26 (22), 16690-­‐16698. Link, S. and El-­‐Sayed, M. Size and temperature dependence of the plasmon absorption of colloidal gold nanoparticles. J. Phys. Chem. B. 1999, 103 (21), 4212-­4217. Liu, J. and Hurt, R. Ion release kinetics and particle persistence in aqueous nano-­silver colloids. Environ. Sci. Technol. 2010, 44, 2169-­‐2175. Lok, C.; Ho, C.; Chen, R.; He, Q.; Yu, W.; Sun, H.; Tam, P.; Chiu, J.; Che, C. Proteomic analysis of the mode of antibacterial action of silver nanoparticles. J. Proteome. Res. 2006, 5, 916-­‐924. Lok, C.; Ho, C.; Chen, R.; He, Q.; Yu, W.; Sun, H.; Tam, P.; Chiu, J.; Che, C. Silver nanoparticles: partial oxidation and antibacterial activities. J. Biol. Inorg. Chem. 2007, 12, 527-­‐534. Luoma, S.; Ho, Y.; Bryan, G. Fate, bioavailability and toxicity of silver in estuarine environments. Mar. Pollut. Bull. 1995, 31, 44-­‐54. Luomo, S. and Rainbow, P. Metal contamination in aquatic environments: science and lateral management. Cambridge: Cambridge University Press: 2008. MacCuspie, R. Colloidal stability of silver nanoparticles in biologically relevant conditions. J. Nanopart. Res. 2011, 13, 2893-­‐2908.

Quality Material By Project Basket





Related Materials

Fetching comments. Please wait...