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Design of defect-core in highly birefringent photonic crystal fibers with anisotropic claddings

机译:具有各向异性包层的高双折射光子晶体光纤的缺陷芯设计

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摘要

The influence of defect-core on the birefringence and confinement losses of rectangular-lattice photonic crystal fibers are investigated numerically by applying the multipole method. Numerical results illustrate that the birefringence in such fibers is determined not only by the arrangement of air holes in the cladding but also the shape of the core. It is found that asymmetry of the core represented by its rectangular shape implies a higher effective index of the mode that is parallel with the longer side of the rectangle, whereas the anisotropic rectangular-lattice cladding gives rise to just the opposite effect and thus the resulting birefringence can be controlled by a proper combinations of both mechanisms. In particular, effect of the asymmetry of the core on the birefringence is dominant for shorter wavelength. Increased birefringence and reduced confinement loss can be achieved, if we form the core by the omission of several air holes in a row to reduce its negative effect on the birefringence. On the other hand, when asymmetry is increased in the other direction, a negative birefringence at shorter wavelength can be achieved. This occurs due to the fact that asymmetry of the core at higher frequencies overcomes the effect of the asymmetric cladding. As a result, its possible to achieve zero birefringence in anisotropic cladding photonic crystal fiber with an asymmetric core.
机译:应用多极子方法,数值研究了缺陷核对矩形晶格光子晶体光纤的双折射和约束损耗的影响。数值结果表明,这种光纤中的双折射不仅取决于包层中气孔的排列,还取决于纤芯的形状。发现以矩形表示的芯部不对称意味着与矩形较长边平行的模的有效折射率较高,而各向异性矩形晶格包层仅产生相反的效果,因此产生可以通过两种机制的适当组合来控制双折射。特别地,对于较短的波长,纤芯不对称对双折射的影响是主要的。如果我们通过连续省略几个气孔来形成纤芯,以减少其对双折射的负面影响,则可以实现增加的双折射和减少的约束损耗。另一方面,当在另一个方向上增加不对称性时,可以实现在较短波长处的负双折射。这是由于较高频率下纤芯的不对称性克服了非对称包层的影响这一事实而发生的。结果,在具有不对称纤芯的各向异性包层光子晶体光纤中实现零双折射是可能的。

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