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Development of High-Throughput substrates for Generating Two-Dimensional Nanoparticles Assemblies and for Screening Protein Adsorption
Published online by Cambridge University Press: 01 February 2011
Abstract
We discuss methods leading to the fabrication of orthogonal substrates comprising surface-anchored polymer brushes, in which the polymer brush grafting density and molecular weight vary independently in two mutually perpendicular directions. We demonstrate that these orthogonal polymer substrates can be used as intelligent combinatorial platforms that facilitate the spatial distribution of nanoparticles and allow screening of protein adsorption on surfaces.
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- Research Article
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- Copyright © Materials Research Society 2004
References
REFERENCES
1.
Margel, S., Folger, E., Firment, L., Watt, T., Haynie, S., Sogah, D., J. Biomed. Mat. Res.
27, 1463 (1993).Google Scholar
2.
Silver, J.H., Hergenrother, R., Lin, J-C., Lim, F., Lin, H-B., Okada, T., Chaudhury, M.K., Cooper, S., J. Biomed. Mat. Res.
29, 535 (1995).Google Scholar
6.
Ulman, A., “An Introduction to Ultrathin Organic Films from Langmuir-Blodgett to Self-Assembly”, Academic Press, New York, 1991.Google Scholar
7.
Husseman, M., Mecerreeys, D., Hanker, C.J., Hedrick, J.L., Shah, R., Abbot, N.L., Angew. Chem. Int. Ed. Engl.
38, 647 (1999).Google Scholar
8.
Shah, R., Mecerreyes, D., Husemann, M., Rees, I., Abbot, N.L., Hawker, C.J., Hedrick, J.L.
Macromolecules
33, 597 (2000).Google Scholar
9.
Jeon, N.L., Choi, I.S., Whitesides, G.M., Kim, N.Y., Laibinis, P.E., Harada, Y., Finnie, K.P., Girolami, G.S., Nuzzo, R.G., Appl. Phys. Letters
75, 4201 (1999).Google Scholar
10.
De Boer, B., Simon, H.K., Werts, M.P.L., van der Vegte, E.W., Hadziioannou, G., Macromolecules, 33, 349 (2000).Google Scholar
15.
Genzer, J., “Molecular gradients: Formation and applications in soft condensed matter science”, Encyclopedia of Materials Science, edited by Buschow, K.H.J., Cahn, R.W., Flemings, M.C., Ilschner, B., Kramer, E.J., Mahajan, S., (Elsevier, 2002).Google Scholar
17.
Hoogenboom, R., Meir, M.A.R., Schubert, U.S., Macromol. Rapid Commun.
24, 15 (2003).Google Scholar
19.
Wu, T., Efimenko, K., Vlček, P., Šubr, V., Genzer, J., Macromolecules
36, 2448 (2003).Google Scholar
22.
Wu, T., Genzer, J., Gong, P., Szleifer, I., Vlček, P., Šubr, V., in Polymer Brushes edited by Brittain, W., Advincula, R., Ruehe, J. and Caster, K. (Wiley & Sons, in press 2003).Google Scholar
23.
Bhat, R.R., Genzer, J., Chaney, B.N., Sugg, H.W., Liebmann-Vinson, A., Nanotechnology
14, 1145 (2003).Google Scholar
24.
Bhat, R.R., Tomlinson, M.R., Genzer, J., Macromol. Rapid Commun., Accepted (2003).Google Scholar
26.
Grabar, K. C., Smith, P. C., Musick, M. D., Davis, J. A., Walter, D. G., Jackson, M. A., Guthrie, A. P. and Natan, M. J., J. Am. Chem. Soc., 118, 1148 (1996).Google Scholar
27.
Leckband, D., Sheth, S. and Halperin, A., J. Biomater. Sci. Polymer Edn., 10, 1125 (1999).Google Scholar
30.
Matyjaszewski, K., Miller, P. J., Shkula, N., Immaraporn, B., Belman, A., Luokala, B. B., Siclovan, T. M., Kickelbick, G., Vallant, T., Hoffmann, H. and Pakula, T., Macromolecules, 32, 8716 (1999).Google Scholar
32.
Gombotz, W.R., Guanghui, W., Horbett, T. A. and Hoffman, A. S., J. Biomed. Mater. Res., 25, 1546 (1991).Google Scholar
33.
Rouce, F. R. Jr, Ratner, B.D. and Horbett, T.A. in Biomaterials: Interfacial Phenomena and Applications edited by Cooper, S.L. and Peppas, N.A. (American Chemical Society, Washington, D.C., 1982), p. 453.Google Scholar
34.
Bohnert, J. L., Horbett, T. A., Ratner, B. D., Royce, F. H., Investig. Opth. Vis. Sci.
29, 362 (1988).Google Scholar