scholarly journals Quality of radiation conversion under four-wave mixing on thermal nonlinearity with feedback

2021 ◽  
Vol 5 (45) ◽  
pp. 667-672
Author(s):  
A.A. Akimov ◽  
S.A. Guzairov ◽  
V.V. Ivakhnik

Quality of radiation conversion under four-wave mixing on thermal nonlinearity with feedback for both signal and object waves has been investigated at high reflection coefficients. It has been shown that the optimal operating mode of a four-wave converter on thermal nonlinearity is the mode in which the pumping waves have equal intensities and there is a compensation for a phase shift arising from the pumping wave self-action. In this operating mode of the four-wave radiation converter, as compared with the case of the absence of feedback for both signal and object waves, a significant increase in the amplitude reflection coefficient is observed with an increase in the pumping waves intensities. In this case, despite the decrease in the bandwidth of spatial frequencies of the object wave with an increase in the pumping wave intensities, the quality of radiation conver-sion with feedback for both signal and object waves is better than in the absence of feedback.

2018 ◽  
Vol 42 (2) ◽  
pp. 227-235
Author(s):  
V. V. Ivakhnik ◽  
M. V. Savelyev

We analyze changes in the spatial structure of an object wave under four-wave mixing in a transparent two-component medium in schemes with opposing and concurrent pump waves. It is shown that in the spatial spectrum of the object wave there is a dip, whose position is determined by the propagation direction of the second pump wave. Angular rotation and frequency shift of the pump waves lead to a decrease in the conversion efficiency of high spatial frequencies. The bandwidth of the spatial frequencies cut out by the four-wave radiation converter decreases monotonically over time, whereas the bandwidth of the most efficiently converted spatial frequencies increases.


1999 ◽  
Vol 08 (03) ◽  
pp. 403-418
Author(s):  
SERGEY A. PODOSHVEDOV

Evolution of four waves propagating forward in nematic liquid crystal is studied using Hamiltonian representation of initial equations describing the process. Here we extend theory of the four-wave mixing on thermal nonlinearity of nematic liquid crystal. All types of analytical solutions are found for these equations. The possibilities of observing of optical switching in this mixing are discussed.


2009 ◽  
Author(s):  
Βασίλειος Αναγνωστόπουλος

Η Διατριβή επικεντρώνεται στη μελέτη αλγορίθμων online δρομολόγησης και παροχής Ποιότητας Υπηρεσίας (Quality of Service) σε δίκτυα ΑΟΝ (All Optical Networks) WDM τα οποία χρησιμοποιούν το σχήμα MPλS (Multi-Protocol Lambda Switching). Αναπτύσσεται η θεωρία δρομολόγησης κάτω από impairments (ατέλειες φυσικού στρώματος) με έμφαση τα μη-γραμμικά φαινόμενα και ειδικά τα φαινόμενα FWM (Four Wave Mixing) και XPM (Cross Phase Modulation). Δίνεται έμφαση στην αποτελεσματική διαχείριση και τον υπολογισμό των σταθερών οι οποίες χρησιμοποιούνται για την μοντελοποίηση των διαφόρων φυσικών διεργασιών οι οποίες αλλοιώνουν το σήμα και οδηγούν σε μείωση του BER (Bit Error Rate) του συνδέσμου και κατ’ επέκτασιν τη χειροτέρευση της ποιότητας υπηρεσίας. Σε ένα τέτοιο πλαίσιο σχεδιάζεται και προτείνεται ένας προσομοιωτής ο οποίος με βάση προσεγγιστικά αναλυτικά μοντέλα μπορεί και προσομοιώνει μια πληθώρα αλγορίθμων RWA (Routing and Wavelength Assignment) για τη σύγκριση των υπαρχόντων προσεγγίσεων με τις προτεινόμενες από τον συγγραφέα. Κεντρικό στοιχείο της διατριβής είναι η αυτόνομη διαχείριση του δικτύου και η αύξηση με ευφυείς μεθόδους δρομολόγησης της περιοχής διαφάνειας του δικτύου κάτω από πραγματικές συνθήκες και όχι με τη σχεδίαση χειρότερης περίπτωσης. Με αυτόν τον τρόπο αυξάνεται η εκμετάλλευση του υπάρχοντος εύρους ζώνης του δικτύου χωρίς την ανάγκη εγκατάστασης νέου για να αντιμετωπιστούν οι ατέλειες φυσικού μέσου. Τέλος μελετάται η ελαχιστοποίηση της παρέμβασης του διαχειριστή με χρήση της αυτόματης δρομολόγησης και ανάθεσης μήκους κύματος που προσφέρεται από εξελιγμένους αλγορίθμους. Τα αποτελέσματα δικαιολογούνται με εκτενείς προσομοιώσεις.


2018 ◽  
Vol 42 (4) ◽  
pp. 534-541
Author(s):  
A.A. Akimov ◽  
◽  
S.A. Guzairov ◽  
V.V. Ivakhnik ◽  
◽  
...  

1982 ◽  
Author(s):  
M. H. Garrett ◽  
H. J. Hoffman ◽  
T. J. Karr

Author(s):  
Anil Kumar ◽  
Karamjit Kaur

Background: The invention of WDM technology in optical communication system has completely revolutionized the telecomm industry through its high data carrying capacity and efficiency of transmission. Advanced optical modulation formats with high spectral efficiency, advanced components like Reconfigurable Optical Add Drop Multiplexers (ROADMS), OXC, and large bandwidth requirements contributed significantly in existence of dynamic, flexible translucent and transparent networks. In these networks, it is common practice to increase the power levels as much as possible to overcome the power penalty effects and better transmission, but this introduces several non-linear impairments in the link and hence degrades the quality of signal flowing. These impairments arise when several high strength optical fields of different wavelengths interact with molecular vibrations and acoustic waves. The different non-linear impacts include Self Phase Modulation (SPM), Cross Phase Modulation (XPM), Four Wave Mixing (FWM) and scattering effects like Stimulated Raman Scattering (SRS), Stimulated Brillouin Scattering (SBS. The main cause of these impairments is variation in refractive index of fiber (also called Kerr effect) due to intensity of signal flowing through fiber. Due to the degradation impact posed by these impairments, it is crucial to analyze their cause, their influence on system performance and mitigation techniques so as to improve the overall quality of transmission. The monitoring of impairments is quite a challenging task due to their dependency on time, present state of network, signals flowing in adjoining channels and fibers. Objective: The present work aims to identify and describe the role of FWM in optical networks. The mathematical model of FWM is studied to know the parameters influencing the overall impact on system performance. The power of optical source, channel spacing, distance of transmission and presence of dispersion are considered as key factors influencing FWM power being developed. Their impact on FWM power and hence, FWM efficiency is calculated. In addition, the influence of FWM on Quality of transmission is quantified in terms of BER and Q-factor. Method: The analysis is done through a two-channel transmitter system with varied power, channel spacing, distance of transmission and presence of other degradation factors (dispersion) is taken into account. The corresponding optical spectrums are analysed. Result & Conclusion: In this paper, the non-linear impairment FWM posing degradation effect on the signal quality has been discussed. The basics involved are presented along with the mathematical model. It has been found that FWM results in power transfer from one channel to generation of new waves which may lead to power depletion and interference. The new waves generated depend on the number of wavelengths travelling in the fiber and channel spacing. The influence of FWM on system performance is presented in terms of BER and Q-value. It has been concluded that the increased power of transmission and decreased channel spacing are the crucial factors increasing the magnitude of FWM and need to be closely monitored. On the other hand, increased distance of propagation and presence of certain level of dispersion leads to decrease in FWM power. Therefore, if selected carefully, they may act as source of FWM mitigation without requiring any external compensating device


1992 ◽  
Vol 69 (25) ◽  
pp. 3635-3638 ◽  
Author(s):  
N. A. Bogatov ◽  
M. S. Gitlin ◽  
A. G. Litvak ◽  
A. G. Luchinin ◽  
G. S. Nusinovich

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