Photonic band gap with coherently controlled defeat induced by a nanoscale structure

Wei Li, S. Sadeghi
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Abstract

Photonics band gap properties will be changed dramatically if there is a defect at the center of the photonic crystal. We theoretically proposed a nanoscale structure, i.e., n-doped asymmetric quantum wells, coherently controlled by an infrared laser. Due to the quantum interference in the conduction intersubband transitions, the refractive index could be monitored at some specific wavelength. This structure is applied at the center of the photonic crystal or grating waveguide as a coherently controlled defect . We also investigated the reflection, transmission or delay time of this one-dimensional photonic band gap at various wavelengths while the defect is adjusted by an infrared laser beam. It is believed that the structure could be used in the devices for the optical pulse reshaping, dispersion control, and wavelength filter or used as a distributed Bragg grating reflector for the laser mode tuning. Therefore it might have great applications in the optic communication or information processing
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纳米结构诱导的相干控制失效光子带隙
如果光子晶体的中心存在缺陷,光子带隙的性质会发生很大的变化。我们从理论上提出了一种由红外激光相干控制的纳米级结构,即n掺杂不对称量子阱。由于传导子带间跃迁中的量子干涉,可以在特定波长处监测折射率。该结构应用于光子晶体或光栅波导的中心,作为相干控制缺陷。我们还研究了该一维光子带隙在不同波长下的反射、传输或延迟时间。认为该结构可用于光脉冲整形、色散控制和波长滤波器件,也可作为分布式布拉格光栅反射器用于激光模式调谐。因此,它在光通信和信息处理方面有很大的应用前景
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