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  • 1
    Electronic Resource
    Electronic Resource
    Westerville, Ohio : American Ceramics Society
    Journal of the American Ceramic Society 81 (1998), S. 0 
    ISSN: 1551-2916
    Source: Blackwell Publishing Journal Backfiles 1879-2005
    Topics: Mechanical Engineering, Materials Science, Production Engineering, Mining and Metallurgy, Traffic Engineering, Precision Mechanics , Physics
    Notes: We propose a flow method to produce barium hexaferrite (BaO6Fe2O3) particles with hydrothermal crystallization in supercritical water. Aqueous iron(III) and barium nitrate solution at room temperature was pressurized to 30 MPa and then mixed with potassium hydroxide solution (OH:NO3 = 4) at the same conditions to generate metal hydroxides. This mixture was then rapidly heated to 400°C by mixing with supercritical water and then fed into a tubular reactor. Residence time was ~1 min. The reaction was terminated by cooling at the exit of the reactor. The Ba:Fe mole ratio was varied over a range of 0.1-2. When the Ba:Fe ratio was ~1/12, which is the stoichiometric ratio for BaO6Fe2O3, the main products were alpha-Fe2O3. However, for the case of Ba:Fe 〉 0.5, fine particles of single-phase BaO6Fe2O3 were produced. Batch experiments (380°C, 30 MPa) at Ba:Fe = 0.5 in supercritical water at a reaction time of 10 min produced a mixture of alpha-Fe2O3 and BaO6Fe2O3. This product transformed to the equilibrium phase, BaO2Fe2O3, in 4 h as the reaction time increased, which suggests that the BaO6Fe2O3 that formed in supercritical water with our proposed flow method under nonstoichiometric conditions was an intermediate but stable product. Furthermore, the nonstoichiometric and nonequilibrium (dynamic) conditions are important for producing single-phase BaO6Fe2O3 particles. The single-phase particles are highly stable and can be produced continuously in a reaction time of 〈1 min.
    Type of Medium: Electronic Resource
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