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Mean field theory with only a few transverse Fourier components of EM fields for low-frequency two-dimensional photonic bands

机译:平均场理论仅具有用于低频二维光子带的EM场的横向傅立叶组件

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We propose a mean-field band structure theory for low-lying two-dimensional photonic states based on the principle of plane wave expansion. Our theory reduces the complexities of a two-dimensional problem into that of an effective one-dimensional crystal, which provides two key advantages: a) simplification of dimensions assists in ease of calculation and b) delineation of the photonic state physics leads to a gain in its physical insights. Our method distinguishes itself from previous known mean field theories in its capability of including more than one Fourier component of EM fields decomposed along the direction perpendicular to propagation. Furthermore, the method applies for virtually any crystal structure and direction of propagation, and was discovered to function well for both E-polarization and H-polarization modes of states. We also attempt to demonstrate systematic improvement of the calculation with increasing number of Fourier components. Satisfactory numerical accuracy is obtained particularly for the states of the lowest two bands.
机译:基于平面波膨胀原理,我们提出了一种用于低洼二维光子状态的平均场带结构理论。我们的理论将二维问题的复杂性降低到有效的一维晶体中的复杂性,提供了两个关键优势:a)尺寸的简化易于计算,b)描射光子状态物理的划分导致增益在它的身体洞察中。我们的方法在其具有沿垂直于传播的方向分解的EM场的多于一个傅立叶元件的能力中的先前已知的平均场理论中的本身与先前已知的平均特性理论。此外,该方法适用于几乎任何晶体结构和传播方向,并且被发现用于良好的态偏振和H偏振模式。我们还尝试通过越来越多的傅立叶组件来证明对计算的系统改进。获得满意的数值精度,特别是对于最低两个带的状态。

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