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Antenna Miniaturization Using Magnetic-Photonic and Degenerate Band-Edge Crystals

机译:使用磁光子和简并的带边晶体实现天线小型化

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Engineered materials, such as new composites and electromagnetic bandgap and periodic structures have been of strong interest in recent years, due to their extraordinary and unique electromagnetic behaviors. This paper discusses how modified materials, inductive/capacitive lumped loads, and magnetic materials/crystals are impacting antenna miniaturization and performance improvements (e.g., bandwidth and gain reduction, multi-functionality, etc.). Dielectric design and texturing for impedance matching has led to significant size reduction and higher-bandwidth low-frequency antennas, for example. The recently introduced magnetic-photonic crystals (MPCs) and double band-edge (DBE) materials, displaying spectral nonreciprocity, are also discussed. Studies of these crystals demonstrated that magnetic-photonic crystals exhibit the interesting phenomena of (a) drastic slowing down of the incoming wave, coupled with (b) significant amplitude growth, while (c) maintaining minimal reflection at the interface with free space. The phenomena are associated with diverging frozen modes that occur around the stationary inflection points within the band diagram. Taking advantage of the frozen-mode phenomena, we demonstrate that individual antenna elements and linear or volumetric arrays embedded within the magnetic-photonic crystal and double band-edge structures allow for antenna sensitivity and gain enhancements
机译:近年来,工程材料,例如新型复合材料和电磁带隙以及周期性结构,因其非凡而独特的电磁性能而引起了人们的极大兴趣。本文讨论了改性材料,电感性/电容性集总负载以及磁性材料/晶体如何影响天线的小型化和性能改善(例如带宽和增益降低,​​多功能等)。例如,用于阻抗匹配的介电设计和纹理化已导致尺寸显着减小和更高带宽的低频天线。还讨论了最近推出的磁光子晶体(MPC)和双谱带(DBE)材料,它们显示出光谱互易性。对这些晶体的研究表明,磁光子晶体表现出有趣的现象:(a)入射波的急剧减慢,以及(b)明显的幅度增长,而(c)在与自由空间的界面处保持最小的反射。该现象与在带状图中的固定拐点周围发生的发散的冻结模式有关。利用冻结模式现象,我们证明了嵌入磁光子晶体和双带边结构中的单个天线元件和线性或体积阵列可提高天线灵敏度并增强增益

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