Principe Maria, Castaldi Giuseppe, Consales Marco, Cusano Andrea, Galdi Vincenzo
1] Waves Group, Department of Engineering, University of Sannio, I-82100, Benevento, Italy [2] Optoelectronic Division, Department of Engineering, University of Sannio, I-82100, Benevento, Italy.
Waves Group, Department of Engineering, University of Sannio, I-82100, Benevento, Italy.
Sci Rep. 2015 Feb 24;5:8568. doi: 10.1038/srep08568.
Supersymmetry has been shown to provide a systematic and effective framework for generating classes of isospectral optical structures featuring perfectly-phase-matched modes, with the exception of one (fundamental) mode which can be removed. More recently, this approach has been extended to non-Hermitian scenarios characterized by spatially-modulated distributions of optical loss and gain, in order to allow the removal of higher-order modes as well. In this paper, we apply this approach to the design of non-Hermitian optical couplers with higher-order mode-selection functionalities, with potential applications to mode-division multiplexing in optical links. In particular, we highlight the critical role of the coupling between non-Hermitian optical waveguides, which generally induces a phase transition to a complex eigenspectrum, thereby hindering the targeted mode-selection functionality. With the specific example of an optical coupler that selects the second-order mode of a given waveguide, we illustrate the aforementioned limitations and propose possible strategies to overcome them, bearing in mind the practical feasibility of the gain levels required.
超对称性已被证明能为生成具有完美相位匹配模式的等谱光学结构类提供一个系统且有效的框架,但有一种(基本)模式可被去除除外。最近,这种方法已扩展到以光学损耗和增益的空间调制分布为特征的非厄米特情形,以便也能去除高阶模式。在本文中,我们将此方法应用于具有高阶模式选择功能的非厄米特光耦合器的设计,其在光链路中的模式分割复用方面有潜在应用。特别地,我们强调了非厄米特光波导之间耦合的关键作用,这种耦合通常会引发向复本征谱的相变,从而阻碍目标模式选择功能。以一个选择给定波导二阶模式的光耦合器为例,我们说明了上述限制,并提出了克服这些限制的可能策略,同时考虑到所需增益水平的实际可行性。