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光子晶体慢光特性与光脉冲压缩技术研究

摘要第3-5页
Abstract第5-7页
Chapter One:Prolegomenon第16-24页
    1.1 Prolegomenon第16-19页
    1.2 Methodology第19-20页
    1.3 Goals and outlines of the thesis第20-22页
        1.3.1 Goals第20-21页
        1.3.2 Outlines第21-22页
    1.4 Main work and achievements第22-24页
        1.4.1 The creative points第22-23页
        1.4.2 Important results and creative achievements第23-24页
Chapter Two:Introduction第24-42页
    2.1 Photonic Crystals第24-26页
    2.2 Theory of photonic band structures第26-28页
    2.3 Two dimensional photonic crystals and defects第28-32页
    2.4 Maxwell’s equations第32-35页
    2.5 BANDSOLVE module of software Rsoft第35-39页
        2.5.1 Array layout utilities and lattice vectors in Rsoft BANDSOLVE第35-36页
        2.5.2 Simulation parameters第36-39页
    2.6 FULLWAVE Rsoft software第39-42页
Chapter Three:Slow light properties and buffering capability第42-55页
    3.1 Slow light concept第42-44页
    3.2 Group velocity and Group index第44-46页
    3.3 Group velocity dispersion第46-47页
    3.4 NDBP and buffering performance第47-50页
    3.5 Quality factor in PhCs第50-52页
        3.5.1 Finding cavity resonances第51页
        3.5.2 Quality factor methods第51-52页
    3.6 Dispersion properties and slow light mechanism第52-55页
        3.6.1 Dispersion-engineered slow light第53-54页
        3.6.2 Dispersion compensation mechanism第54-55页
Chapter Four:Slow light properties and buffering capability in photonic crystal waveguides第55-109页
    4.1 W1 photonic crystal waveguide第55-71页
        4.1.1 Physical model of W1 photonic crystal waveguide第56-58页
        4.1.2 Simulation results and analysis of W1 photonic crystal waveguide第58-67页
        4.1.3 Fabrication tolerance of slow light properties第67-71页
    4.2 Multi-W waveguide in a hexagonal lattice photonic crystal第71-88页
        4.2.1 Physical model of W3 waveguide in a hexagonal-lattice photonic crystal第71-72页
        4.2.2 Equivalent description by transmission line theory第72-74页
        4.2.3 Simulation results and analyses of W3 waveguide in a hexagonal-lattice第74-82页
        4.2.4 Time domain analysis of W3 waveguide in a hexagonal-lattice第82-88页
    4.3 Multi-W waveguide in a square lattice photonic crystal第88-107页
        4.3.1 Physical model of5L Waveguide in a square-lattice photonic crystal第88-89页
        4.3.2 Simulation results and analyses of5L Waveguide in a square-lattice第89-96页
        4.3.3 Time-domain analysis of5L Waveguide in a square-lattice第96-100页
        4.3.4 Implementation considerations of5L Waveguide in a square-lattice第100-107页
            4.3.4.1 Coupling losses第101-102页
            4.3.4.2 Propagation losses第102-103页
            4.3.4.3 Fabrication tolerance of slow-light and buffer capability parameters第103-107页
    4.4 Conclusive remarks第107-109页
Chapter Five:Slow light properties and buffering capability in photonic crystal waveguide coupled with cavity第109-130页
    5.1 Photonic crystal waveguide coupled with cavity第109-111页
    5.2 Photonic crystal waveguide coupled with rhombus cavity(PCW-CC)第111-118页
        5.2.1 Physical model of PCW-CC第111-113页
        5.2.2 Simulation results of rhombus and neighbor cavity radii第113-118页
    5.3 Photonic crystal waveguide coupled with hexagon cavity(PCW-CC)第118-129页
        5.3.1 MOB model第119-120页
        5.3.2 Simulation results of MOB geometry第120-125页
        5.3.3 Quality factor enhancements第125-129页
    5.4 Conclusive remarks第129-130页
Chapter Six:Summary第130-133页
References第133-145页
Acknowledgement第145-146页
Publications第146-147页

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