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Nano biomedical application

This chapter describes the synthesis, properties, and biomedical applications of cyanine and squaraine dyes encapsulated in CDs, CBs, Leigh-type tetralactam macrocycles, aptamers, and micro- or nano-particles. The optical and photochemical properties of supramolecular guest-host nanostructures that are based on intra-and intermolecular complexes of crown-containing styryl dyes with metal cations, and aggregates of carbocyanine dyes are discussed in a separate review [18]. [Pg.161]

Ai H, Jones SA, Lvov YM (2003) Biomedical applications of electrostatic layer-by-layer nano-assembly of polymers, enzymes, and nanoparticles. Cell Biochem Biophys 39 23—43... [Pg.156]

Kumar, C. S. S. R., Hormes, J., and Leuschner, C. (2005), Nano fabrication Towards Biomedical Applications Techniques, Tools, Applications, and Impact, Wiley, Hoboken, NJ. [Pg.1324]

We ve tried to include all substantial developments and advances in this new edition. Significant developments in biomedical applications, microelectromechani-cal systems, and electronic textiles have been included, as has synthesis of nano-structured CEPs. New methods for characterizing CEPs, such as electrochemical Raman and electron spin resonance spectroscopy, have also been described. Significant progress is also detailed in techniques for processing CEPs and the fabrication of devices. [Pg.277]

Grage, K., Jahns, A.C., Parlane, N., Palanisamy, R., Rasiah, I.A., Atwood, J.A., and Rehm, B.H.A. (2009) Baderial polyhydroxyalcanoate granules biogenesis, structure, and poteintial use as nano-/micro-beads in biotechnological and biomedical applications. Biomacromolecules, 10, 660-669. [Pg.271]

Tlie potential of electronics with organic molecules and the technologies employed in then production, such as soft hthography and self-assembly of monolayers,> the feasibility of micro- and nano-devices for biomedical applications. [Pg.66]

Landfester, K., A. Musyanovych, and V. Mailander, From polymeric particles to multifunctional nano-capsules for biomedical applications using the miniemulsion process. J. Polym. Sci. A Polym. Chem. 48 (2010) 493-515. [Pg.326]

Currently, an enormous amount of magnetic particles are produced, and outstanding research is performed due to their promising applications. Research into magnetic latex at the smaller nano- and microlevels is of great interest. The special behaviour of these nano/micromaterials points to a very promising future in the area of biomedical applications [1,2]. [Pg.239]

N. Hasird, Micro and nano systems in biomedidne and drug delivery, in M.R. Mozafari (Ed.), Nanomaterials and Nanosystems for Biomedical Applications, Springer, The Netherlands, 2007, pp. 1-26. [Pg.394]

J.E. Gagner, S. Shrivastava, X. Qian, J.S. Dordick, R.W. Siegel, Engineering nanomaterials for biomedical applications requires understanding the nano-bio interface a perspective, J. Phys. Chem. Lett. 3 (2012) 3149-3158. [Pg.396]

Adamek, G. and Jakubowicz, J. Mechanoelectrochemical synthesis and properties of porous nano-Ti-6Al-4V alloy with hydroxyapatite layer for biomedical applications. Electrochemistry Communication, 12,653-656 (2010). [Pg.375]

His current research interests are nano-structured materials for biomedical applications, mechanistic and kinetic studies of radical polymerization processes, and exploratory polymer chemistry for advanced applications. [Pg.453]


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See also in sourсe #XX -- [ Pg.229 , Pg.231 ]




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