论文标题

基于平均时间对称耦合共振的频道滤波器的设计优化

Design optimization of band-pass filter based on parity-time symmetry coupled-resonant

论文作者

Lu, Xinda, Chen, Nuo, Zhang, Boqing, Yang, Haofan, Chen, Yuntian, Zhang, Xinliang, Xu, Jing

论文摘要

基于微孔谐振器的集成光滤波器在许多应用中起着至关重要的作用,从波长的多路复用和切换到通道路由。带宽可调滤波器能够在复杂情况下在复杂的情况下达到按需弹性操作,因为它们的可扩展性,多功能和节能。最近已经调查了平均时间(PT)对称性耦合共振系统可以应用于带宽可启用过滤器。但是,由于带宽可触摸的对比度和系统插入损失之间的权衡,该方法的带宽可触摸比率受到严重限制。在这里,带宽可 - 可启动造影率的比例定义为最大带宽除以最小带宽。在这项工作中,我们表明,可以通过增加输入端口和谐振剂之间的耦合强度来同时实现系统的高带宽对比度和系统的低插入损失。在不同耦合状态下的系统表征表明,当系统最初在过度耦合条件下运行时,可以获得低插入损失。硅平台上显示了高带宽可调对比度PT对称带中等插入损耗的滤波器。我们的方案提供了一种有效的方法,可以减少芯片可调过滤器的插入损失,该过滤器也适用于高阶级联微孔系统。

Integrated optical filter based on microring resonators plays a critical role in many applications, ranging from wavelength division multiplexing and switching to channel routing. Bandwidth tunable filters are capable of meeting the on-demand flexible operations in complex situations, due to their advantages of scalability, multi-function, and energy-saving. It has been investigated recently that parity-time (PT) symmetry coupled-resonant systems can be applied to the bandwidth-tunable filters. However, due to the trade-off between the bandwidth-tunable contrast ratio and insertion loss of system, the bandwidth-tunable contrast ratio of this method is severely limited. Here, the bandwidth-tunable contrast ratio is defined as the maximum bandwidth divided by the minimum bandwidth. In this work, we show that high bandwidth-tunable contrast ratio and low insertion loss of system can be achieved simultaneously by increasing the coupling strength between the input port and the resonant. System characterizations under different coupling states reveal that the low insertion loss can be obtained when the system initially operates at the over-coupling condition. A high bandwidth-tunable contrast ratio PT-symmetry band-pass filter with moderate insertion loss is shown on the Silicon platform. Our scheme provides an effective method to reduce the insertion loss of on-chip tunable filters, which is also applicable to the high-order cascaded microring systems.

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