Issue 47, 2013

Co3O4 nanostructures: the effect of synthesis conditions on particles size, magnetism and transport properties

Abstract

Surfactant-free Co3O4 nanostructures with various particle size ranges were synthesized via the solution combustion method using cobalt nitrate solution as a cobalt precursor and urea as a combustion fuel. Control over average particles size range was achieved by tuning the reaction ignition temperature between 300 °C and 800 °C. X-ray diffraction (XRD) and helium gas pycnometry indicated the formation of single phase Co3O4 nanoparticles with a spinel structure. Transmission electron microscopy (TEM) studies revealed an increase of the size range from 5–8 nm to 200–400 nm for Co3O4 nanoparticles synthesized at 300 °C and 800 °C, respectively. The corresponding decrease in the specific surface area from 39 m2 g−1 to ∼2 m2 g−1 was confirmed by gas adsorption analysis using BET techniques. Magnetic susceptibility measurements revealed a dominant antiferromagnetic (AFM) ordering and the Néel temperature decreases with a decreasing average particle size range from 31 K (200–400 nm) to 25 K (5–18 nm). Interestingly, effective magnetic moments (ranging from 4.12 μB to 6.16 μB) substantially larger than the value of 3.9 μB expected for Co2+ ions in the normal spinel structure of Co3O4 were extracted from the inverse susceptibility data. This finding was rationalized by taking into account the disordered distribution of Co2+ and Co3+ ions in the Co3O4 inverse spinel structures ([(Co2+)1−x(Co3+)x]tet[(Co2+)x(Co3+)2−x]octO4) where the inversion degree (x) depends on the synthesis temperature. Transport measurements using hot pressed pellets of Co3O4 nanoparticles indicated p-type semiconducting behavior and drastic reductions in the thermal conductivity with decreasing average particle size.

Graphical abstract: Co3O4 nanostructures: the effect of synthesis conditions on particles size, magnetism and transport properties

Article information

Article type
Paper
Submitted
29 Aug 2013
Accepted
11 Oct 2013
First published
11 Oct 2013

J. Mater. Chem. A, 2013,1, 15022-15030

Co3O4 nanostructures: the effect of synthesis conditions on particles size, magnetism and transport properties

P. Sahoo, H. Djieutedjeu and P. F. P. Poudeu, J. Mater. Chem. A, 2013, 1, 15022 DOI: 10.1039/C3TA13442C

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