论文标题
超紧凑型硅多模模型弯曲基于特殊曲线的双极化
Ultra-compact Silicon Multimode Waveguide Bends Based on Special Curves for Dual Polarizations
论文作者
论文摘要
具有非常紧凑的尺寸的多模型波导弯曲(MWB)是不同模式分割多路复用(MDM)系统应用中的关键构建块。为了进一步提高传输能力,考虑到硅波导中不同极化下的极度模式行为,硅多模型波导弯曲特别感兴趣。已经研究了适合两种极化的很少硅MWB。在本文中,我们根据不同的弯曲曲线函数分析了几个双极化MWB。这些基于特殊曲线的硅MWB具有易于制造和低损失的优点,与基于光栅等亚波长结构(例如光栅)的其他结构相比。自由形式曲线,Bezier曲线和Euler曲线进行了比较,这些曲线用于弯曲区域而不是常规弧。研究了硅多模模型在核心厚度为340 nm中的前三个TE和TM模式的透射光谱。模拟结果表明,在本文中仅10的前提中,基于自由形式曲线的6模式MWB具有最佳性能,包括在1500-1600 nm的所有六个模式下,低于0.052db的损失低于0.052db和低于-25.97db。基于Bezier和Euler曲线的MWB在损失和串扰方面降低了性能。本文的结果提供了一种有效的设计方法,即极敏感的硅MWB,该方法可以利用研究来建立复杂的光学传输系统,同时融合了MDM和极化划分多路复用(PDM)技术。
The multimode waveguide bends (MWBs) with very compact sizes are the key building blocks in the applications of different mode-division multiplexing (MDM) systems. To further increase the transmission capacity, the silicon multimode waveguide bends for dual polarizations are of particular interest considering the very distinct mode behaviors under different polarizations in the silicon waveguides. Seldom silicon MWBs suitable for both polarizations have been studied. In this paper we analyze several dual-polarization-MWBs based on different bending curve functions. These special curve-based silicon MWBs have the advantages of easy fabrication and low loss compared with other structures based on the subwavelength structures such as gratings. A comparison is made between the free-form curve, Bezier curve, and Euler curve, which are used in the bending region instead of a conventional arc. The transmission spectra of the first three TE and TM modes in the silicon multimode waveguide with a core thickness of 340 nm are investigated. The simulation results indicate that in the premise of the same effective radius which is only 10 in this paper, the 6-mode MWB based on the free-form curve has the optimal performances, including an extremely low loss below 0.052dB and low crosstalk below -25.97dB for all six modes in the wide band of 1500-1600 nm. The MWBs based on the Bezier and Euler curve have degraded performances in terms of the loss and crosstalk. The results of this paper provide an efficient design method of the polarization insensitive silicon MWBs, which may leverage the researches for establishing complicated optical transmission systems incorporating both the MDM and polarization-division multiplexing (PDM) technology.