Novel Ferrimagnetic Iron Oxide Nanopowders
Kishori Deshpande, M. D. Nersesyan, Alexander S. Mukasyan, Arvind Varma
Abstract
Kishori Deshpande, M. D. Nersesyan, Alexander S. Mukasyan, Arvind Varma
Abstract
Because of their scientific and technological utility, magnetic properties of fine-particle systems have assumed great importance in recent years. Maghemite (γ-Fe 2 O 3 ) and magnetite (Fe 3 O 4 ) are commonly used in magnetic inks, as catalysts, and as ferrofluids for biomedical uses. In the current work, we report a novel one-step process for the synthesis of different iron oxide phases, including maghemite and magnetite, using the aqueous combustion synthesis technique. The method involves a self-sustained reaction between an oxidizer (e.g., metal nitrate) and a fuel (e.g., glycine or hydrazine). Using this approach, for the first time, spherical, nanoscale (6−10 nm) iron oxide particles with excellent ferrimagnetic properties were synthesized. While the samples have particle sizes of <10 nm, they exhibit ferrimagnetic behavior at room temperature, as opposed to super-paramagnetism, as reported previously by numerous workers. Further, particularly for Fe 3 O 4, the coercivity values are exceptionally high (213 Oe), indicating stable magnetization.
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Because of their scientific and technological utility, magnetic properties of fine-particle systems have assumed great importance in recent years. Maghemite (γ-Fe 2 O 3 ) and magnetite (Fe 3 O 4 ) are commonly used in magnetic inks, as catalysts, and as ferrofluids for biomedical uses. In the current work, we report a novel one-step process for the synthesis of different iron oxide phases, including maghemite and magnetite, using the aqueous combustion synthesis technique. The method involves a self-sustained reaction between an oxidizer (e.g., metal nitrate) and a fuel (e.g., glycine or hydrazine). Using this approach, for the first time, spherical, nanoscale (6−10 nm) iron oxide particles with excellent ferrimagnetic properties were synthesized. While the samples have particle sizes of <10 nm, they exhibit ferrimagnetic behavior at room temperature, as opposed to super-paramagnetism, as reported previously by numerous workers. Further, particularly for Fe 3 O 4, the coercivity values are exceptionally high (213 Oe), indicating stable magnetization.
Key concepts: Maghemite, Ferrimagnetism, Magnetite, Materials science, Coercivity, Iron oxide, Paramagnetism, Oxide