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Magnetized plasma photonic crystals band gap

机译:磁化等离子体光子晶体带隙

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In this paper, the effect of the magnetic field on one-dimensional plasma photonic crystal band gaps is studied. The one-dimensional fourfold plasma photonic crystal is applied that contains four periodic layers of different materials, namely plasma1- MgF2-plasma2-glass in one unit cell. Based on the principle of Kronig-Penney's model, dispersion relation for such a structure is obtained. The equations for effective dielectric functions of these two modes are theoretically deduced, and dispersion relations for transverse electric (TE) and transverse magnetic (TM) waves are calculated. At first, the main band gap width increases by applying the exterior magnetic field. Subsequently, the frequency region of this main band gap transfers completely toward higher frequencies. There is a particular upper limit for the magnitude of the magnetic field above which increasing the exterior magnetic field strength doesn't have any significant influence on the dispersion function behavior. (With an increase in incident angle up to θ_1 = 66°, the width of photonic band gap (PBG) changes for both TM/TE polarization.) With an increase in incident angle up to θ_1 = 66°, the width of PBG decreases for TM polarization and the width of PBG increases for TE polarization, but it increases with further increasing of the incident angle from θ_1 = 66° to 89° for both TE- and TM-polarizations. Also, it has been observed that the width of the photonic band gaps changes rapidly by relative difference of the two-plasma frequency. Results show the existence of several photonic band gaps that their frequency and dispersion magnitude can be controlled by the exterior magnetic field, incident angle, and two plasma frequencies. The result of this research would provide theoretical instructions for designing filters, microcavities, fibers, etc.
机译:本文研究了磁场对一维等离子体光子晶体带隙的影响。使用一维四重等离子体光子晶体,该晶体在一个晶胞中包含四个不同材料的周期性层,即等离子1- MgF 2-等离子2-玻璃。根据Kronig-Penney模型的原理,获得了这种结构的色散关系。从理论上推导了这两种模式的有效介电函数方程,并计算了横向电(TE)和横向磁(TM)波的色散关系。首先,通过施加外部磁场来增加主带隙宽度。随后,该主带隙的频率区域完全向更高的频率转移。磁场的大小有一个特定的上限,在此上限之上,增加外部磁场强度不会对色散函数行为产生任何重大影响。 (随着入射角增加到θ_1= 66°,对于TM / TE偏振,光子带隙(PBG)的宽度都会改变。)随着入射角增加到θ_1= 66°,PBG的宽度会减小对于TM偏振,PBG的宽度对于TE偏振增加,但是对于TE和TM偏振,随着入射角从θ_1= 66°到89°进一步增加,PBG的宽度也增加。同样,已经观察到,光子带隙的宽度由于两个等离子体频率的相对差异而迅速变化。结果表明存在多个光子带隙,它们的频率和色散大小可以通过外部磁场,入射角和两个等离子体频率来控制。这项研究的结果将为设计过滤器,微腔,纤维等提供理论指导。

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