Liang Xian, Yang Xiangbo, Ma Jihui, Huang Mengli, Deng Dongmei, Liu Hongzhan, Wei Zhongchao
Guangdong Provincial Key Laboratory of Nanophotonic Functional Materials and Devices, School of Information and Optoelectronic Science and Engineering, South China Normal University, Guangzhou 510006, China.
Nanomaterials (Basel). 2022 Oct 6;12(19):3492. doi: 10.3390/nano12193492.
A novel one-dimensional parity-time-symmetric periodic ring optical waveguide network (1D PTSPROWN) is constructed using magnesium fluoride (MgF), by adjusting the length ratio of gain and loss materials in PT-symmetric waveguide and ordinary dielectric material, and by optimizing the program to search for the extremum spontaneous PT-symmetric breaking points. The ultra-strong transmission, reflection, and photonic location are noticed in the proposed 1DPTSPROWN as compared with the other PT-symmetric optical waveguide networks. The maximum and minimum reached 10 and 10, respectively, which is more than 6 orders of magnitude greater and 3 orders of magnitude smaller than the best results reported so far. The ultra-strong transmission and reflection peaks, ultra-weak transmission, and reflection valleys generated by electromagnetic waves in this network were found to have interesting resonance and anti-resonance effects. Furthermore, frequency of periodic cycles and violet or redshift laws were discovered in the 1D PTSPROWN of fixed length ratio of gain and loss material in the PT-symmetric waveguide by adjusting the ratio of the upper and lower arm lengths of waveguides. The proposed optical waveguide network might have potential application in the design of CPA lasers, high-efficiency optical accumulators, and several other devices.
利用氟化镁(MgF)构建了一种新型的一维奇偶时间对称周期环形光波导网络(1D PTSPROWN),通过调整奇偶时间对称波导中增益和损耗材料的长度比以及普通介电材料,并通过优化程序来搜索极值自发奇偶时间对称破缺点。与其他奇偶时间对称光波导网络相比,在所提出的1D PTSPROWN中观察到了超强传输、反射和光子定位现象。最大值和最小值分别达到了10和10,比迄今报道的最佳结果分别大6个数量级以上和小3个数量级。发现该网络中电磁波产生的超强传输和反射峰、超弱传输和反射谷具有有趣的共振和反共振效应。此外,通过调整波导上下臂长度的比例,在奇偶时间对称波导中增益和损耗材料长度比固定的1D PTSPROWN中发现了周期循环频率以及紫移或红移规律。所提出的光波导网络可能在CPA激光器、高效光蓄能器和其他几种器件的设计中具有潜在应用。