Strong reduction of V(4+) amount in vanadium oxide/hexadecylamine nanotubes by doping with Co(2+) and Ni(2+) ions: Electron paramagnetic resonance and magnetic studies


Autoria(s): SALETA, M. E.; TROIANI, H. E.; GUEVARA, S. Ribeiro; RUANO, G.; SANCHEZ, R. D.; MALTA, M.; TORRESI, R. M.
Contribuinte(s)

UNIVERSIDADE DE SÃO PAULO

Data(s)

19/04/2012

19/04/2012

2011

Resumo

In this work we present a complete characterization and magnetic study of vanadium oxide/hexadecylamine nanotubes (VO(x)/Hexa NT's) doped with Co(2)+ and Ni(2+) ions. The morphology of the NT's has been characterized by transmission electron microscopy, while the metallic elements have been quantified by the instrumental neutron activation analysis technique. The static and dynamic magnetic properties were studied by collecting data of magnetization as a function of magnetic field and temperature and by electron paramagnetic resonance. At difference of the majority reports in the literature, we do not observe magnetic dimers in vanadium oxide nanotubes. Also, we observed that the incorporation of metallic ions (Co(2+), S = 3/2 and Ni(2+), S = 1) decreases notably the amount of V(4+) ions in the system, from 14-16% (nondoped case) to 2%-4%, with respect to the total vanadium atoms (fact corroborated by XPS experiments) anyway preserving the tubular nanostructure. The method to decrease the amount of V(4+) in the nanotubes improves considerably their potential technological applications as Li-ion batteries cathodes. (C) 2011 American Institute of Physics. [doi: 10.1063/1.3580252]

CONICET

U.N., Argentina[Cuyo 06/C203]

ANPCyT, Argentina[PICT-2004 21372]

ANPCyT, Argentina[RN3M]

FAPESP, Brazil[03/10015-3]

Identificador

JOURNAL OF APPLIED PHYSICS, v.109, n.9, 2011

0021-8979

http://producao.usp.br/handle/BDPI/16764

10.1063/1.3580252

http://dx.doi.org/10.1063/1.3580252

Idioma(s)

eng

Publicador

AMER INST PHYSICS

Relação

Journal of Applied Physics

Direitos

openAccess

Copyright AMER INST PHYSICS

Palavras-Chave #OXIDE NANOTUBES #MULTIWALL NANOTUBES #ABSORPTION #OXIDATION #GLASSES #ESR #EPR #Physics, Applied
Tipo

article

original article

publishedVersion