Synthesis and magnetic properties of nanostructured metallic Co, Mn and Ni oxide materials obtained from solid-state metal-macromolecular complex precursors
Author
dc.contributor.author
Díaz Valenzuela, Carlos
Author
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Valenzuela, M.L.
Author
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Laguna Becerro, M.A.
Author
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Orera, A.
Author
dc.contributor.author
Bobadilla, D.
Author
dc.contributor.author
Abarca, S.
Author
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Peña, O.
Admission date
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2018-03-26T18:32:43Z
Available date
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2018-03-26T18:32:43Z
Publication date
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2017
Cita de ítem
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RSC Adv., 2017, 7, 27729–27736
es_ES
Identifier
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10.1039/c7ra00782e
Identifier
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https://repositorio.uchile.cl/handle/2250/147004
Abstract
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The simple reaction of chitosan with metallic salts yields (chitosan) (MLn)(x), MLn = MnCl2, CoCl2, NiCl2, macromolecular complexes which, after a thermal treatment at 800 degrees C under air, give nanostructured Mn2O3, Co3O4 and NiO. The polymer acts as a template in the solid state, which is eliminated after the combustion process. At an intermediate stage, a layered graphitic carbon matrix was observed by HRTEM over the grown metal oxides. A mechanism for the growth of nanostructured oxides is discussed, including Raman studies. The nanostructured Mn2O3, Co3O4 and NiO particles grow over graphite layers and the solid-state role of chitosan is crucial for the formation of this graphite substrate. An antiferromagnetic transition was observed in Co3O4 nanoparticles, with T-N = 38 K, whereas NiO nanoparticles behave as a superparamagnetic material with a blocking temperature above 300 K.
Synthesis and magnetic properties of nanostructured metallic Co, Mn and Ni oxide materials obtained from solid-state metal-macromolecular complex precursors