Formation of oriented nickel aggregates in rutile single crystals by Ni implantation


Autoria(s): Cruz, M. M.; Silva, R. C. da; Pinto, J. V.; Borges, R. P.; Franco, N.; Casaca, A.; Alves, E.; Godinho, M.
Data(s)

02/11/2013

02/11/2013

01/08/2013

Resumo

The magnetic and electrical properties of Ni implanted single crystalline TiO2 rutile were studied for nominal implanted fluences between 0.5 x 10(17) cm(-2) and 2.0 x 10(17) cm(-2) with 150 keV energy, corresponding to maximum atomic concentrations between 9 at% and 27 at% at 65 nm depth, in order to study the formation of metallic oriented aggregates. The results indicate that the as implanted crystals exhibit superparamagnetic behavior for the two higher fluences, which is attributed to the formation of nanosized nickel clusters with an average size related with the implanted concentration, while only paramagnetic behavior is observed for the lowest fluence. Annealing at 1073 K induces the aggregation of the implanted nickel and enhances the magnetization in all samples. The associated anisotropic behavior indicates preferred orientations of the nickel aggregates in the rutile lattice consistent with Rutherford backscattering spectrometry-channelling results. Electrical conductivity displays anisotropic behavior but no magnetoresistive effects were detected. (C) 2013 Elsevier B.V. All rights reserved.

Identificador

CRUZ, M. M.; SILVA, R. C. da; PINTO, J. V.; BORGES, R. P.; FRANCO, N.; CASACA, A.; ALVES, E.; GODINHO, M. - Formation of oriented nickel aggregates in rutile single crystals by Ni implantation. Journal of Magnetism and Magnetic Materials. ISSN 304-8853. Vol. 340 (2013), p. 102-108.

0304-8853

10.1016/j.jmmm.2013.03.032

http://hdl.handle.net/10400.21/2848

Idioma(s)

eng

Publicador

Elsevier Science BV

Direitos

restrictedAccess

Palavras-Chave #Nickel nanoparticle #Titanium dioxide #Magnetic aggregate #Room-temperature ferromagnetism #Thin-films #Doped TIO2 #Anisotropic ferromagnetism #Magnetic-properties #Ion-implantation #CO #Cobalt #Nanoparticles #FE
Tipo

article