Ferromagnetic resonance imaging of Co films using magnetic resonance force microscopy
B. J. Suh, P. C. Hammel, Z. Zhang, M. Midzor, M. L. Roukes, J. R. Childress
Abstract
B. J. Suh, P. C. Hammel, Z. Zhang, M. Midzor, M. L. Roukes, J. R. Childress
Abstract
Lateral one-dimensional imaging of cobalt (Co) films by means of microscopic ferromagnetic resonance (FMR) detected using the magnetic resonance force microscope (MRFM) is demonstrated. A novel approach involving scanning a localized magnetic probe is shown to enable FMR imaging in spite of the broad resonance linewidth. We introduce a spatially selective local field by means of a small, magnetically polarized spherical crystallite of yttrium iron garnet (YIG). Using MRFM-detected FMR signals from a sample consisting of two Co films, we can resolve the ∼20 μm lateral separation between the films. The results can be qualitatively understood by consideration of the calculated spatial profiles of the magnetic field generated by the YIG sphere.
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Lateral one-dimensional imaging of cobalt (Co) films by means of microscopic ferromagnetic resonance (FMR) detected using the magnetic resonance force microscope (MRFM) is demonstrated. A novel approach involving scanning a localized magnetic probe is shown to enable FMR imaging in spite of the broad resonance linewidth. We introduce a spatially selective local field by means of a small, magnetically polarized spherical crystallite of yttrium iron garnet (YIG). Using MRFM-detected FMR signals from a sample consisting of two Co films, we can resolve the ∼20 μm lateral separation between the films. The results can be qualitatively understood by consideration of the calculated spatial profiles of the magnetic field generated by the YIG sphere.
Key concepts: Magnetic resonance force microscopy, Ferromagnetic resonance, Magnetic resonance microscopy, Yttrium iron garnet, Magnetic force microscope, Materials science, Laser linewidth, Nuclear magnetic resonance