论文标题
修饰的耦合谐振器的设计光学波导支持冷冻模式
Design of a Modified Coupled Resonators Optical Waveguide Supporting a Frozen Mode
论文作者
论文摘要
我们设计了一个三向硅光波导,其Bloch分散关系支持固定拐点(SIP)。 SIP是退化的三阶特殊点(EPD),其中三个BLOCH模式合并,形成冻结模式的幅度大大增强。所提出的设计由耦合的谐振器光学波导(CRAW)组成,该谐波(乌鸦)耦合到平行的直波导。在任何给定的频率下,该结构都支持三对相互的bloch本征模,并传播和/或evanevancent。除了全波模拟外,我们还采用了所谓的“混合模型”,该“混合模型”使用了从单位电池的亚块的全波模拟获得的转移矩阵。这使我们能够考虑辐射损失,并基于最小化特征码的合并参数而实现设计程序。提出的有限长度乌鸦在SIP频率下显示几乎统一的传递函数,这意味着将输入光的转换几乎完美地转换为冷冻模式。小组延迟和SIP频率下的有效质量因子显示出$ n^{3} $缩放,其中$ n $是腔中单位单元的数量。乌鸦中的冷冻模式可用于在传感器,激光器和光学延迟线等各种应用中。
We design a three-way silicon optical waveguide with the Bloch dispersion relation supporting a stationary inflection point (SIP). The SIP is a third order exceptional point of degeneracy (EPD) where three Bloch modes coalesce forming the frozen mode with greatly enhanced amplitude. The proposed design consists of a coupled resonators optical waveguide (CROW) coupled to a parallel straight waveguide. At any given frequency, this structure supports three pairs of reciprocal Bloch eigenmodes, propagating and/or evanescent. In addition to full-wave simulations, we also employ a so-called ''hybrid model'' that uses transfer matrices obtained from full-wave simulations of sub-blocks of the unit cell. This allows us to account for radiation losses and enables a design procedure based on minimizing the eigenmodes' coalescence parameter. The proposed finite-length CROW displays almost unitary transfer function at the SIP frequency, implying a nearly perfect conversion of the input light into the frozen mode. The group delay and the effective quality factor at the SIP frequency show an $N^{3}$ scaling, where $N$ is the number of unit cells in the cavity. The frozen mode in the CROW can be utilized in various applications like sensors, lasers and optical delay lines.