Chen Nan, Zhang Xuedian, Chang Min, Lu Xinglian, Zhou Jun
Key Laboratory of Optical Technology and Instrument for Medicine, Ministry of Education, University of Shanghai for Science and Technology, Shanghai 200093, China.
Shanghai Key Laboratory of Molecular Imaging, Shanghai University of Medicine and Health Sciences, Shanghai 201318, China.
Micromachines (Basel). 2020 Apr 29;11(5):470. doi: 10.3390/mi11050470.
Polarization filter is a very important optical device with extinction characteristics. Due to the design flexibility of photonic crystal fibers and the high excitation losses of the gold layer, the polarization filter based on the photonic crystal fiber and surface plasmonic resonance effect is widely studied. Considering these, we present a simple and high-performance polarization filter using the finite element method. Numerical simulations show that there is a large difference in energy between the two polarization directions by reasonable adjustment of the structural parameters, the confinement loss in the x-pol direction is less than that in the y-pol direction, which is suitable to realize a broadband polarization filter. When the fiber length is 2 mm, the extinction ratio peak can reach -478 dB, and the bandwidth with the extinction ratio better than -20 dB is 750 nm, which covers communication wavelengths of 1.31 μm and 1.55 μm (1.05-1.8 μm). It also has a low insertion loss of 0.11 dB at 1.31 μm and 0.04 dB at 1.55 μm. In addition, our design has high feasibility in fabrication and better tolerance. The proposed filter with compactness, high extinction ratio, broad bandwidth, and low insertion loss would play an important role in the sensing detection, bio-medical, and telecommunication field.
偏振滤波器是一种具有消光特性的非常重要的光学器件。由于光子晶体光纤的设计灵活性以及金层的高激发损耗,基于光子晶体光纤和表面等离子体共振效应的偏振滤波器得到了广泛研究。考虑到这些,我们使用有限元方法提出了一种简单且高性能的偏振滤波器。数值模拟表明,通过合理调整结构参数,两个偏振方向之间的能量存在很大差异,x偏振方向的限制损耗小于y偏振方向,这适合实现宽带偏振滤波器。当光纤长度为2毫米时,消光比峰值可达-478分贝,消光比优于-20分贝的带宽为750纳米,覆盖了1.31微米和1.55微米(1.05-1.8微米)的通信波长。它在1.31微米处的插入损耗低至0.11分贝,在1.55微米处为0.04分贝。此外,我们的设计在制造方面具有很高的可行性和更好的容差。所提出的滤波器具有紧凑性、高消光比、宽带宽和低插入损耗,将在传感检测、生物医学和电信领域发挥重要作用。