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首页> 外文期刊>Photonics and Nanostructures: Fundamentals and Applications >Tuning the flow of light in semiconductor-based photonic crystals by magnetic fields
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Tuning the flow of light in semiconductor-based photonic crystals by magnetic fields

机译:通过磁场调整半导体基光子晶体中的光流

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摘要

Tuning the flow of light by external fields is a challenging task for scientific studies and optical applications, but it is important in many applications such as switches, modulators, and slow wave structures. Here, new results are presented which demonstrate that this effectively can be achieved by external magnetic fields in one-dimensional photonic crystals made from semiconducting material. The advantage of using semiconducting material is the magnetic-field dependent dielectric function of the free charge carriers particularly where the magnetic field causes large and strongly varying contributions - near the plasma frequency and the cyclotron resonance frequency. The results of simulations on the basis of a multiple scattering method at infrared and microwave frequencies and of experiments on Indium Antimonide in the latter frequency regime confirm the tunability up to the extreme case from full transparency to opaqueness and vice versa.
机译:对于科学研究和光学应用,通过外部场调节光的流动是一项艰巨的任务,但是在许多应用中,例如开关,调制器和慢波结构,这一点很重要。在这里,提出了新的结果,这些结果表明,可以有效地通过由半导体材料制成的一维光子晶体中的外部磁场来实现这一目标。使用半导体材料的优点是自由电荷载流子的取决于磁场的介电功能,特别是在磁场引起较大且变化很大的贡献的地方-靠近等离子体频率和回旋共振频率。在红外和微波频率下基于多重散射方法的模拟结果以及在后者频率范围内对锑化铟进行的实验结果证实了从完全透明到不透明甚至极端情况下的可调性。

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