Issue 6, 2011

Porous Co3O4 microcubes: hydrothermal synthesis, catalytic and magnetic properties

Abstract

Well-defined porous Co3O4 microcubes have been synthesized by a simple one-pot solvothermal method combined with subsequent calcination. The formation mechanism of the cube-like precursor was proposed based on the anisotropic intrinsic structure of CoCO3. Importantly, after thermal treatment, the cube-like morphology could be completely preserved. Moreover, the thermal decomposition of the corresponding precursor led to the formation of porous structure. The effects of calcination temperature on the catalytic properties of Co3O4 samples were investigated and the results demonstrated that 600 °C was superior among three samples with the highest catalytic properties. Additionally, as an antiferromagnetic material, the sample showed a certain degree of ferromagnetism under the external magnetic field.

Graphical abstract: Porous Co3O4 microcubes: hydrothermal synthesis, catalytic and magnetic properties

Article information

Article type
Paper
Submitted
10 Jul 2010
Accepted
24 Nov 2010
First published
17 Jan 2011

CrystEngComm, 2011,13, 2123-2129

Porous Co3O4 microcubes: hydrothermal synthesis, catalytic and magnetic properties

F. Cao, D. Wang, R. Deng, J. Tang, S. Song, Y. Lei, S. Wang, S. Su, X. Yang and H. Zhang, CrystEngComm, 2011, 13, 2123 DOI: 10.1039/C0CE00392A

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