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高频低损耗铁氧体的掺杂及热处理研究

摘要第7-9页
abstract第9-10页
1 Introduction第18-45页
    1.1 Ferrites Background第18-20页
    1.2 Ferrite Structure第20-26页
        1.2.1 Spinel Ferrite(SF)第20-24页
        1.2.2 Hexagonal Ferrite第24-26页
        1.2.3 Magnetic Rare Earth Garnets第26页
    1.3 Preparation Techniques of spinel ferrites第26-30页
        1.3.1 Co-precipitation Technique第27页
        1.3.2 Sol-gel method第27-28页
        1.3.3 Hydrothermal Synthesis第28页
        1.3.4 Conventional Solid-State method第28-29页
        1.3.5 Mechanical Alloying第29-30页
    1.4 Ferrite Applications第30-42页
        1.4.1 Ferrite Applications as a Sensors第30-32页
        1.4.2 Ferrite Applications as a Catalyst第32页
        1.4.3 Ferrites Application in Biomedical第32-33页
        1.4.4 Ferrite Applications for Water Treatment第33-35页
        1.4.5 Ferrite Applications in Rechargeable Batteries第35页
        1.4.6 Ferrites Application in Magnetic Devices第35-42页
    1.5 Motivation of Work第42-45页
2 Experimental Techniques第45-61页
    2.1 Samples Preparation第45-49页
        2.1.1 Chemical Reagents第45-46页
        2.1.2 Preparation of Polycrystalline Sample第46-49页
            2.1.2.1 Sample Preparation by Solid State Technique第46-47页
            2.1.2.2 Sintering Plan第47-49页
            2.1.2.3 Sample Preparation by Chemical Co-precipitation Methods第49页
    2.2 Characterization第49-61页
        2.2.1 X-ray Diffraction (XRD)第50-51页
        2.2.2 Scanning Electron Microscope(SEM)第51-53页
        2.2.3 X-ray Energy Dispersive Spectroscopy (EDS)第53页
        2.2.4 Density Measurements第53-54页
        2.2.5 Impedance Analyzer (Agilent 4291A and Agilent 4291B)第54-56页
        2.2.6 BH-Analyzer第56-58页
        2.2.7 Superconducting Quantum Interference Device(SQUID)第58-59页
        2.2.8 Thermal Analysis TGA/DTA第59-61页
3 Co_2O_3 and SnO_2 Doped High Frequency MnZn Ferrite第61-78页
    3.1 Introduction第61-62页
    3.2 Experimental Procedure第62-63页
        3.2.1 Samples Preparation第62页
        3.2.2 Characterization第62-63页
    3.3 Result and Discussion第63-76页
        3.3.1 Effects of Co_2O_3 Doping on the Properties of MnZn ferrites第63-68页
        3.3.2 Effects of SnO_2 Doping on the Properties of MnZn ferrites第68-73页
        3.3.3 Discussion第73-76页
    3.4 Conclusion第76-78页
4 Co_2O_3 and SnO_2 Co-doped High Frequency MnZn Ferrite第78-92页
    4.1 Introduction第78-79页
    4.2 Experimental第79-80页
        4.2.1 Preparation of MnZn Ferrite Samples第79页
        4.2.2 Characterization第79-80页
    4.3 Results and Discussions第80-91页
        4.3.1 Effects of Co_2O_3 and SnO_2 Co-doping on Magnetic Properties第80-84页
        4.3.2 Effects of Co_2O_3 and SnO_2 Co-doping on Power Losses第84-88页
        4.3.3 Effects of Co_2O_3 and SnO_2 Co-doping on Microstructure第88-91页
    4.4 Conclusion第91-92页
5 TiO_2 Doped High Frequency MnZn Ferrite第92-108页
    5.1 Introduction第92-93页
    5.2 Experimental第93-94页
        5.2.1 MnZn Ferrite Samples Preparation第93-94页
        5.2.2 Characterization第94页
    5.3 Results and discussion第94-107页
        5.3.1 Effects of TiO_2 Doping on Magnetic Properties of Samples第94-98页
        5.3.2 Effects of TiO_2 Doping on the Power Loss of Samples第98-101页
        5.3.3 Effects of TiO_2 Doping on Microstructure of Samples第101-107页
    5.4 Conclusion第107-108页
6 CoFe_2O_4 Nanoparticles Annealed at Different Temperatures第108-121页
    6.1 Introduction第108-110页
    6.2 Experimental第110页
        6.2.1 Sample Preparation第110页
        6.2.2 Characterization第110页
    6.3 Results and Discussions第110-120页
        6.3.1 Thermal Properties of CoFe_2O_4 nanoparticles第110-111页
        6.3.2 Microstructure Studies of CoFe_2O_4 nanoparticles第111-114页
        6.3.3 Dielectric and magnetic properties of CoFe_2O_4 nanoparticles第114-120页
    6.4 Conclusion第120-121页
7 Conclusion第121-124页
References第124-136页
Acknowledgements第136-137页
Resume第137-138页
Publications第138页

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