Artículos de revistas
Magnetic And Cytotoxic Properties Of Hot-filament Chemical Vapour Deposited Diamond
Registro en:
Materials Science And Engineering C. , v. 32, n. 8, p. 2340 - 2343, 2012.
9284931
10.1016/j.msec.2012.07.005
2-s2.0-84866035120
Autor
Zanin H.
Peterlevitz A.C.
Ceragioli H.J.
Rodrigues A.A.
Belangero W.D.
Baranauskas V.
Institución
Resumen
Microcrystalline (MCD) and nanocrystalline (NCD) magnetic diamond samples were produced by hot-filament chemical vapour deposition (HFCVD) on AISI 316 substrates. Energy Dispersive X-ray Spectroscopy (EDS) measurements indicated the presence of Fe, Cr and Ni in the MCD and NCD samples, and all samples showed similar magnetisation properties. Cell viability tests were realised using Vero cells, a type of fibroblastic cell line. Polystyrene was used as a negative control for toxicity (NCT). The cells were cultured under standard cell culture conditions. The proliferation indicated that these magnetic diamond samples were not cytotoxic. © 2012 Elsevier B.V. 32 8 2340 2343 May, P.W., (2000) Philos. Trans. R. Soc. A, 358, pp. 473-495 Kohn, E., Gluche, P., Adamschik, M., (1999) Diamond Relat. Mater., 8, pp. 934-940 Rodrigues, A.A., Baranauskas, V., Ceragioli, H.J., Peterlevitz, A.C., Belangero, W.D., (2010) Diamond Relat. Mater., 19, pp. 1300-1306 Kumar, R.R., Ryeol, L.K., (2007) J. Biomed. Mater. Res. B Appl. Biomater., 83 B, pp. 72-84 Torricelli, A.K., Almeida, K.C.D., Ceragioli, H.J., Baranauskas, V., Sabha, M., Brocchi, M., Shishido, S.M., Hollanda, L.M., (2011) Eur. J. Cancer, 47, pp. 148-S149 Rodrigues, A.A., Batista, N.A., Bauaresco, V.P., Vanessa, P., Baranauskas, V., Ceragioli, H.J., Peterlevitz, A.C., Belangero, W.D., (2012) Carbon, 50, pp. 2091-2099 Balasubramanian, G., Neumann, P., Twitchen, D., Markham, M., Kolesov, R., Mizuochi, N., Isoya, J., Wrachtrup, J., (2009) Nat. Mater., 8, pp. 383-387 Makarova, T.L., (2004) Semiconductors, 38, pp. 615-638 Schrand, A.M., Hens, S.A.C., Shenderova, O.A., (2009) Crit. Rev. Solid State Mater. Sci., 34, pp. 18-74 Grausova, L., Bacakova, L., Kromka, A., Potocky, S., Vanecek, M., Nesladek, M., Lisa, V., (2009) J. Nanosci. Nanotechnol., 9, pp. 3524-3534 Anke, K., Daniel, L., (2012) Adv. Funct. Mater., 22, pp. 890-906 Alhaddad, A., Adam, M.P., Botsoa, J., Dantelle, G., Perruchas, S., Gacoin, T., Mansuy, C., Bertrand, J.R., (2011) Small, 7, pp. 3087-3095 Soenen, S.J., Himmelreich, U., Nuytten, N., De Cuyper, M., (2011) Biomaterials, 32, pp. 195-205 Soenen, S.J., Nuytten, N., De Meyer, S.F., De Smedt, S.C., De Cuyper, M., (2010) Small, 6, pp. 832-842 Weinstein, J.S., Varallyay, C.G., Dosa, E., Gahramanov, S., Hamilton, B., Rooney, W.D., Muldoon, L.L., Neuwelt, E.A., (2010) J. Cereb. Blood Flow Metab., 30, pp. 15-35 Lobo, A.O., Antunes, E.F., MacHado, A.H.A., Pacheco-Soares, C., Trava-Airoldi, V.J., Corat, E.J., (2008) Mater. Sci. Eng. C, 28, pp. 264-269 Mossmam, T.J., (1983) J. Immunol. Methods, 65, pp. 55-63 Ferrari, A.C., Robertson, J., (2001) Phys. Rev. B, 63, p. 121405 Buhl, S., Leinenbach, C., Spolenak, R., Wegener, K., (2012) Int. J. Refract. Met. Hard Mater, 30, pp. 16-24