Slow light waveguide optical switch

Author(s):  
Ayumi Fuchida ◽  
Fumio Koyama
Optik ◽  
2013 ◽  
Vol 124 (23) ◽  
pp. 6292-6297 ◽  
Author(s):  
Shahram Bahadori Haghighi ◽  
Rahim Ghayour ◽  
Babak Vakili

2018 ◽  
Vol 8 (10) ◽  
pp. 1858 ◽  
Author(s):  
Qiuyue Zhang ◽  
Xun Li

In conventional photonic crystal systems, extrinsic scattering resulting from random manufacturing defects or environmental changes is a major source of loss that causes performance degradation, and the backscattering loss is amplified as the group velocity slows down. In order to overcome the limitations in slow light systems, we propose a backscattering-immune slow light waveguide design. The waveguide is based on an interface between a square lattice of magneto-optical photonic crystal with precisely tailored rod radii of the first two rows and a titled 45 degrees square lattice of Alumina photonic crystal with an aligned band gap. High group indices of 77, 68, 64, and 60 with the normalized frequency bandwidths of 0.444%, 0.481%, 0.485%, and 0.491% are obtained, respectively. The corresponding normalized delay-bandwidth products remain around 0.32 for all cases, which are higher than previously reported works based on rod radius adjustment. The robustness for the edge modes against different types of interfacial defects is observed for the lack of backward propagation modes at the same frequencies as the unidirectional edge modes. Furthermore, the transmission direction can be controlled by the sign of the externally applied magnetic field normal to the plane.


2019 ◽  
Vol 33 (18) ◽  
pp. 1950206
Author(s):  
Fang Chen ◽  
Huafeng Zhang ◽  
Lihui Sun ◽  
Jijun Li ◽  
Chunchao Yu

The electrical control of plasmonic-induced transparency (PIT) via a resonator waveguide system is presented. The proposed structure is composed of a stub and cascade ring resonator. The ring and the stub resonator are filled with electro-optical material which can control the resonance frequency by the external voltage. Two-dimensional finite difference time domain (2D FDTD) method is used to calculate the transmission and field distribution. Single PIT is investigated both by FDTD and Coupled Mode Theory (CMT). The proposed PIT can be tuned by changing the external voltage or the geometric parameters. Double and triple PIT can be obtained by introducing more ring resonators and can be tuned by external voltage. The proposed plasmonic structure may have application in slow light device, nanoscale filter, all-optical switch and refractive index sensor.


CLEO: 2013 ◽  
2013 ◽  
Author(s):  
Liang Zhu ◽  
Swapnajit Chakravarty ◽  
Cheng-Chih Hsieh ◽  
Wei-Cheng Lai ◽  
Ray T. Chen

2020 ◽  
Author(s):  
Mahmoud A. A. Gaafar ◽  
Dirk Jalas ◽  
Liam O’Faolain ◽  
Juntao Li ◽  
Thomas F. Krauss ◽  
...  

2020 ◽  
Vol 8 (13) ◽  
pp. 2000337 ◽  
Author(s):  
Yiming Ma ◽  
Bowei Dong ◽  
Jingxuan Wei ◽  
Yuhua Chang ◽  
Li Huang ◽  
...  

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