三维光子晶体中电磁波与量子点增益材料的相互作用分析

N. Sydorchuk
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引用次数: 3

摘要

由于光子带隙(PBG)的存在,利用光子晶体(PhC)在亚波长尺度上对电磁场进行局域化,近年来引起了研究界的极大兴趣。如果完美晶体的周期性被打破,则可以在PBG内产生局域模式。在纳米电子学,等离子体学和光子学领域的研究已经为一个目标,即实现信号处理组件的密集集成到一个小体积。到目前为止,大多数工作都使用平面二维(2D)结构,因为它们易于制造。然而,在这种情况下,与其他光学元件的连接被限制在结构的平面内。三维PhCs是一种很有前途的控制辐射的平台,其完全光子带隙(PBGs)将增加在三维空间中配置光子电路的自由度。PhCs由于其在太赫兹频段具有低损耗、低色散等特性,在太赫兹产生、传播、操纵和测量的集成光电路中具有重要的应用价值。
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Analysis of electromagnetic wave interaction with quantum-dot gain material in 3D photonic crystals
Use of photonic crystals (PhC) to localize electromagnetic field in sub-wavelength-dimensions due to the existence of the photonic bandgap (PBG) has gained tremendous interest from the research community in recent years. Localized modes within the PBG can be generated if periodicity of a perfect crystal is broken. Investigation in fields of nano-electronics, plasmonics and photonics has for an object to achieve dense integration of signal-processing components into a small volume. Most work so far has utilized planar two-dimensional (2D) structures because of ease in their fabrication. However, in this case connection with other optical components is limited to be in the plane of the structures. 3D PhCs are promising platforms for controlling radiation by means of their complete photonic bandgaps (PBGs) that will add a freedom for configuring photonic circuits in the third dimension. PhCs would play a significant role in construction of integrated optical circuit for THz generation, propagation, manipulation and measurement because of their transparency as well as low loss and dispersion in THz frequency band.
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