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off-axis electron holography
Off-axis electron holography of magnetotactic bacteria : magnetic microstructure of strains MV-1 and MS-1
( A ) Bright-field image of a double chain of magnetite magnetosomes from a...
Magnetic microstructure of bacterial magnetite by electron holography
Editorial
Magnetic Nanocrystals in Organisms
Magnetic and microscopic characterization of magnetite nanoparticles adhered to clay surfaces
Magnetic properties, microstructure, composition, and morphology of greigite nanocrystals in magnetotactic bacteria from electron holography and tomography
Mineral Magnetism: Providing New Insights into Geoscience Processes
The application of Lorentz transmission electron microscopy to the study of lamellar magnetism in hematite-ilmenite
Environmental parameters affect the physical properties of fast-growing magnetosomes
Crystal-size and shape distributions of magnetite from uncultured magnetotactic bacteria as a potential biomarker
Exsolved magnetite inclusions in silicates: Features determining their remanence behavior
Sulfides in Biosystems
Magnetic hysteresis of 0.6–110 μm magnetites across the Verwey transition
Biologically Controlled Mineralization in Prokaryotes
Abstract Biominerals have important functions in living organisms: apatite crystals are responsible for the strength of our bones and the hardness of our teeth, calcite and aragonite are used by many organisms for making shells, and magnetite and greigite help bacteria and birds to navigate in magnetic fields. In order to fulfill their roles in organisms, bio-minerals have strictly controlled physical and chemical properties. Transmission electron microscopy (TEM) is ideally suited for the study of the structures, arrangements, compositions, morphologies, crystallographic orientations, crystallographic textures, and magnetic properties of biominerals at the nanoscale. In this chapter, we review the state of the art in the application of TEM techniques to the study of these properties, both in biomineral crystals and at the inorganic-organic interface. Examples are taken primarily from studies of magnetic minerals that form in the cells of magnetotactic bacteria.