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基于全介质和等离激元超表面的高性能可调波片研究

摘要第4-6页
Abstract第6-7页
详细摘要第8-15页
Chapter 1 Introduction第15-35页
    1.1 Background on Metamaterials第15-17页
    1.2 Theoretical background on polarization conversion第17-21页
        1.2.1 Birefringence anisotropy第17-19页
        1.2.2 Jones vector theoretical analysis第19-21页
    1.3 Metasurface polarization converters第21-29页
        1.3.1 Plasmonic based polarization converters第21-26页
        1.3.2 All-dielectric based polarization converters第26-29页
    1.4 Status of research on birefringent metasurfaces第29-32页
    1.5 Problem statement and research objectives第32-33页
    1.6 Main research contents and significance of this study第33-35页
Chapter 2 Hybrid silicon-graphene slot antenna metasurface第35-56页
    2.1 Introduction第35-37页
    2.2 Metasurface design procedure based on FEM第37-39页
    2.3 Theory and modeling of graphene第39-41页
    2.4 Slot antenna H-shaped birefringent metasurface第41-55页
        2.4.1 Numerical design procedure and parameters第41-44页
        2.4.2 Transmittance and phase difference第44-48页
        2.4.3 Birefringence control through metasurface geometry第48-52页
        2.4.4 Birefringence control through graphene Fermi energy第52-55页
    2.5 Brief summary第55-56页
Chapter 3 Improving the birefringence of a dipole dielectric wave plate usinga graphene layer第56-77页
    3.1 Introduction第56-57页
    3.2 Design, material properties and structure parameters第57-59页
    3.3 Effect of varying structure parameters and Fermi energy第59-72页
        3.3.1 Transmission phase and amplitude第59-69页
        3.3.2 Birefringence performance第69-72页
    3.4 Birefringence switching through gate voltage biasing第72-75页
    3.5 Brief summary第75-77页
Chapter 4 Hybrid plasmonic metasurface quarter-wave plates第77-112页
    4.1 Introduction第77-78页
    4.2 Integrated hybrid plasmonic metasurfaces第78-81页
    4.3 Hybrid graphene?metal metasurface quarter-wave plate第81-86页
        4.3.1 Design concept and operation theory第81-83页
        4.3.2 Model design and parameters definition第83-86页
    4.4 Effect of varying parameters and performance第86-95页
        4.4.1 Effect of varying Fermi level and number of layers of graphene第86-92页
        4.4.2 Effect of varying structure geometry第92-95页
    4.5 Performance of the metasurface through the ellipticity and PCR第95-97页
    4.6 Broadband plasmonic-dielectric embedded metasurface第97-111页
        4.6.1 Numerical design methods and simulation第97-100页
        4.6.2 Plasmonic–dielectric metasurface as a lumped nanocircuit第100-104页
        4.6.3 Birefringence manipulation based on structure properties第104-111页
    4.7 Brief summary第111-112页
Conclusions第112-115页
References第115-130页
Papers published in the period of Ph.D. education第130-134页
Acknowledgement第134-136页
Resume第136-137页

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