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Wavelet-based analysis of transient electromagnetic wave propagation in photonic crystals

机译:基于小波的光子晶体中瞬变电磁波传播分析

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Photonic crystals and optical bandgap structures, which facilitate high-precision control of electromagnetic-field propagation, are gaining ever-increasing attention in both scientific and commercial applications. One common photonic device is the distributed Bragg reflector (DBR), which exhibits high reflectivity at certain frequencies. Analysis of the transient interaction of an electromagnetic pulse with such a device can be formulated in terms of the time-domain volume integral equation and, in turn, solved numerically with the method of moments. Owing to the frequency-dependent reflectivity of such devices, the extent of field penetration into deep layers of the device will be different depending on the frequency content of the impinging pulse. We show how this phenomenon can be exploited to reduce the number of basis functions needed for the solution. To this end, we use spatiotemporal wavelet basis functions, which possess the multiresolution property in both spatial and temporal domains. To select the dominant functions in the solution, we use an iterative impedance matrix compression (IMC) procedure, which gradually constructs and solves a compressed version of the matrix equation until the desired degree of accuracy has been achieved. Results show that when the electromagnetic pulse is reflected, the transient IMC omits basis functions defined over the last layers of the DBR, as anticipated.
机译:在科学和商业应用中,促进对电磁场传播的高精度控制的光子晶体和光学带隙结构越来越受到关注。一种常见的光子器件是分布式布拉格反射器(DBR),它在某些频率下具有高反射率。电磁脉冲与这种设备的瞬态相互作用的分析可以根据时域体积积分方程来表示,然后用矩量法进行数值求解。由于此类设备的频率相关反射率,场穿透到设备深层的程度将取决于撞击脉冲的频率含量而有所不同。我们展示了如何利用这种现象来减少解决方案所需的基础函数的数量。为此,我们使用时空小波基函数,该函数在时域和时域均具有多分辨率特性。要选择解决方案中的主导函数,我们使用迭代阻抗矩阵压缩(IMC)程序,该程序逐步构造并求解矩阵方程的压缩版本,直到达到所需的精度为止。结果表明,当电磁脉冲被反射时,瞬态IMC忽略了在DBR的最后一层上定义的基函数,这与预期的一样。

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