Band gap characteristics of 1D static and moving photonic crystal

2020 ◽  
Vol 597 ◽  
pp. 412360 ◽  
Author(s):  
Laxmi Shiveshwari ◽  
S.K. Awasthi
2013 ◽  
Vol 33 (1) ◽  
pp. 0116003
Author(s):  
韩利红 Han Lihong ◽  
刘立明 Liu Liming ◽  
俞重远 Yu Zhongyuan ◽  
郭璇 Guo Xuan ◽  
袁桂芳 Yuan Guifang ◽  
...  

2019 ◽  
Vol 89 (10) ◽  
pp. 1606
Author(s):  
Д.А. Усанов ◽  
А.В. Скрипаль ◽  
В.Н. Посадский ◽  
В.С. Тяжлов ◽  
А.В. Байкин

AbstractA waveguide Bragg structure containing equidistant cylindrical pins that are galvanically coupled to a wide wall of the waveguide is used to implement frequency response functions characterized by the presence of a band gap. Characteristics of a defect mode of the microwave photonic crystal with a pin element as a defect with an n – i – p – i – n structure with controlled conductivity placed in the capacitive gap are experimentally studied and calculated. Controlled reflectance of a microwave signal with a dynamic range of greater than 50 dB is obtained at the frequency of the defect mode.


2019 ◽  
Vol 125 (5) ◽  
Author(s):  
Jian-Xiao Liu ◽  
Lu Ju ◽  
Yu-Jie Liu ◽  
Hong-Wei Yang ◽  
Wan-Chun Tang

2011 ◽  
Vol 60 (10) ◽  
pp. 104214
Author(s):  
Yuan Gui-Fang ◽  
Han Li-Hong ◽  
Yu Zhong-Yuan ◽  
Liu Yu-Min ◽  
Lu Peng-Fei

Photonics ◽  
2021 ◽  
Vol 8 (7) ◽  
pp. 250
Author(s):  
Vakhtang Jandieri ◽  
Ramaz Khomeriki ◽  
Tornike Onoprishvili ◽  
Daniel Erni ◽  
Levan Chotorlishvili ◽  
...  

This review paper summarizes our previous findings regarding propagation characteristics of band-gap temporal solitons in photonic crystal waveguides with Kerr-type nonlinearity and a realization of functional and easily scalable all-optical NOT, AND and NAND logic gates. The proposed structure consists of a planar air-hole type photonic crystal in crystalline silicon as the nonlinear background material. A main advantage of proposing the gap-soliton as a signal carrier is that, by operating in the true time-domain, the temporal soliton maintains a stable pulse envelope during each logical operation. Hence, multiple concatenated all-optical logic gates can be easily realized paving the way to multiple-input ultrafast full-optical digital signal processing. In the suggested setup, due to the gap-soliton features, there is no need to amplify the output signal after each operation which can be directly used as a new input signal for another logical operation. The efficiency of the proposed logic gates as well as their scalability is validated using our original rigorous theoretical formalism confirmed by full-wave computational electromagnetics.


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