scholarly journals Investigation of a spatial optical pulse collection system in the all-optical analog-to-digital converter

2005 ◽  
Author(s):  
◽  
Wen-Ren Yang

In this research, I conducted a systematic integration of specific calculations for the analysis of the spatial filter that is a critical component of an all-optical analog-to-digital converter. The designed all-optical analog-to-digital converter has special relevance for high-resolution [x] bandwidth applications such as radar image processing. The design of the spatial filter array is based on the silicon-on-insulator process, a design that fulfills requirements of both lower power consumption and smaller integrated circuit chip size. For the developed calculation model, Babinet's principle is used in order to decompose a complicated structure into different simple components. The decomposed structure is analyzed by modifying the existing diffraction calculation methods. The method of calculating the transmission ratio of the propagating electric field compared to the finite-different-time-domain method is a new approach. The systematic integration is also adaptive to changes in the spatial filter's components. Structural changes do not require changes to the entire calculation model.

2014 ◽  
Vol 22 (18) ◽  
pp. 21441 ◽  
Author(s):  
Zhe Kang ◽  
Xianting Zhang ◽  
Jinhui Yuan ◽  
Xinzhu Sang ◽  
Qiang Wu ◽  
...  

2018 ◽  
Vol 101 ◽  
pp. 138-143 ◽  
Author(s):  
Dariush Jafari ◽  
Tofiq Nurmohammadi ◽  
Mohammad Javad Asadi ◽  
Karim Abbasian

2020 ◽  
Vol 14 (1) ◽  
pp. 3-14
Author(s):  
Sajjad Moshfe ◽  
◽  
Mohammad Kazem Moravvej-Farshi ◽  
Kambiz Abedi ◽  
◽  
...  

2021 ◽  
Author(s):  
Sajjad Moshfe ◽  
kambiz abedi ◽  
Mohammad Kazem Moravvej-Farshi

Abstract In this paper, by integrating InP/InGaAsP/InP Photonic crystal semiconductor optical amplifier (PhC-SOA) with photonic crystal channel drop filters (PhC-CDF), we present a novel fully integrated ultra-small low-power all-optical analog to digital converter (AO-ADC). The self-phase modulation in the PhC-SOA can shift the frequency of the Gaussian input pulse. The two output PhC-CDFs are designed in a way that appropriately codes the frequency-shifted pulse by the PhC-SOA, which consequently converts them to four desired digital output levels. The numerical results indicated that the center wavelength of an amplitude modulated Gaussian pulse with a center wavelength of 1551.228 nm, temporal pulse-width of 10.6 ps, and energy of 74.4 fJ can be shifted by 1.652 nm. This shift is accommodated by utilizing a PhC-SOA with a length of 9 µm and an injection current of 6.5 mA. The shifted pulse is then quantized and coded to the four digital levels of (00, 01, 10, 11) by two point-defect PhC-CDFs. The PhC-CDFs minimize the AO-ADC integral and differential nonlinearity (INL/DNL) errors by compensating for the effect of the nonlinear frequency shift induced by PhC-SOA. The proposed design offers a footprint of 142 µm2 AO-ADC working at 10 Gs/s.


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