
Immobilized biomineralizing protein Mms6 templates the formation of uniform magnetite nanoparticles in situ when selectively patterned onto a surface. Magnetic force microscopy shows that the stable magnetite particles maintain their magnetic orientation at room temperature, and may be exchange coupled. This precision-mixed biomimetic/soft-lithography methodology offers great potential for the future of nanodevice fabrication.
magnetic nanoparticles, Magnetic Phenomena, biomineralization, 540, Microscopy, Atomic Force, MFM, Immobilized Proteins, Bacterial Proteins, Microscopy, Electron, Transmission, X-Ray Diffraction, Biomimetic Materials, protein attachment, Microscopy, Electron, Scanning, Nanotechnology, Mms6, Magnetosomes, Magnetospirillum, Magnetite Nanoparticles, surface pattern
magnetic nanoparticles, Magnetic Phenomena, biomineralization, 540, Microscopy, Atomic Force, MFM, Immobilized Proteins, Bacterial Proteins, Microscopy, Electron, Transmission, X-Ray Diffraction, Biomimetic Materials, protein attachment, Microscopy, Electron, Scanning, Nanotechnology, Mms6, Magnetosomes, Magnetospirillum, Magnetite Nanoparticles, surface pattern
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