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Quaternary Bit-Swap Logic with QPSK Signal Using Four Wave Mixing

  • Sutanu Kumar Chandra EMAIL logo and Subhendu Biswas
Published/Copyright: November 9, 2019
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Abstract

Multilevel modulation formats have been now investigated very much to increase the speed and data capacity of optical communication networks in the limited bandwidth. Quadrature phase modulated signal has captured the attention of the researchers in this aim due to its high spectral efficiency and less bit error rate. Quaternary Bit-Swap logic operation is very important fundamental logic operation related to fast and secure computing and communication. Here in this report the authors propose a new method of implementation of all-optical quaternary Bit-Swap logic operation with quadrature phase modulated signal using four wave mixing.

References

1. Hurst SL. Multiple valued logic—its status and its future. IEEE Trans Comput. 1984;C-33:1160–79.10.1109/TC.1984.1676392Search in Google Scholar

2. Jahangir I, Dihan Md, Hasan N, Islam S, Siddique NA, Hasan AM Md. Development of a novel quaternary algebra with the design of some useful logic blocks. Computers and Information Technology, 2009. ICCIT’09. 12th International Conference on IEEE, 2009.10.1109/ICCIT.2009.5407140Search in Google Scholar

3. Bogoni A, Wu X, Bakhtiari Z, Nuccio S, Willner AE. 640 Gb/s photonic logic gates. Opt Lett. 2010;35:3955–7.10.1364/OL.35.003955Search in Google Scholar PubMed

4. Sygletos S, Tomkos I, Leuthold J. Technological challenges on the road toward transparent networking. J Opt Networking. 2008;7:321–50.10.1364/JON.7.000321Search in Google Scholar

5. Willner AE, Khaleghi S, Chitgarha MR, Yilmaz OF. All-optical signal processing. J Lightwave Technol. 2014;32:660–80.10.1109/JLT.2013.2287219Search in Google Scholar

6. Wabnitz S, Eggleton B, edited. All-optical signal processing, Chapter-8. Berlin, Germany: Springer, 2015.10.1007/978-3-319-14992-9Search in Google Scholar

7. Gnauck AH, Winzer PJ. Optical phase-shift keyed transmission. J Lightwave Technol. 2005;23:115–30.10.1109/JLT.2004.840357Search in Google Scholar

8. Winzer PJ, Essiambre R. Advanced modulation formats for high-capacity optical transport networks. J Lightwave Technol. 2006;24:4711–28.10.1109/JLT.2006.885260Search in Google Scholar

9. Cotter D, Manning RJ, Blow KJ, Ellis AD, Kelly AE, Nesset D, et al. Nonlinear optics for high-speed digital information processing. Science. 1999;286:1523–8.10.1126/science.286.5444.1523Search in Google Scholar PubMed

10. Lacey JP, Summerfield MA, Madden SJ. Tunability of polarization-insensitive wavelength converters based on four-wave mixing in semiconductor optical amplifiers. J Lightwave Technol. 1998;16:2419–27.10.1109/50.736624Search in Google Scholar

11. Zhou GT, Xu K, Wu J, Yan C, Su Y, Lin JT. Self-pumping wavelength conversion for DPSK signals and DQPSK generation through four-wave mixing in highly nonlinear optical fiber. IEEE Photonics Technol Lett. 2006;18:2389–91.10.1109/LPT.2006.885590Search in Google Scholar

12. Deng N, Chan K, Chan C-K, Chen L-K. An all-optical XOR logic gate for high-speed RZ-DPSK signals by FWM in semiconductor optical amplifier. IEEE J Sel Top Quantum Electron. 2006;12:702–7.10.1109/JSTQE.2006.876603Search in Google Scholar

13. Chandra SK, Biswas S, Mukhopadhyay S. Phase encoded all-optical reconfigurable integrated multilogic unit using phase information processing of four wave mixing in semiconductor optical amplifier. IET-Optoelectronics. 2016;10:1–6.10.1049/iet-opt.2014.0066Search in Google Scholar

14. Chandra SK, Mukhopadhyay S. All optical alternative approach of conducting NAND and NOR logic gates with phase encoding principle. Optik- Int J Light Electron Opt. 2011;123:1022–5.10.1016/j.ijleo.2011.07.022Search in Google Scholar

15. Chandra SK, Sarkar PP, Biswas S, Mukhopadhyay S. All-optical phase encoded 4-to-1 phase multiplexer using four wave mixing in semiconductor optical amplifier. Optik- Int J Light Electron Opt. 2014;125:6953–7.10.1016/j.ijleo.2014.08.064Search in Google Scholar

16. Kong D, Li Y, Wang H, Zhang X, Zhang J, Wu J, et al. All-optical XOR gates for QPSK signals based on four-wave mixing in a semiconductor optical amplifier. IEEE Photonics Technol Lett. 2012;24:988–90.Search in Google Scholar

17. Lazzeri E, Malacarne A, Serafino G, Bogoni A. All-optical XOR gate for QPSK in-phase and quadrature components based on periodically poled lithium niobate waveguide for photonic coding and error detection applications. Opt Supercomputing. 2013;7715:35–41.10.1007/978-3-642-38250-5_5Search in Google Scholar

18. Wang J, Yang J-Y, Huang H, Willner AE. Three-input optical addition and subtraction of quaternary base numbers. Opt Express. 2013;21:488–99.10.1364/OE.21.000488Search in Google Scholar PubMed

19. Wang J, Willner AE. High-base optical signal proccessing, applications of digital signal processing through practical approach, Dr Sudhakar Radhakrishnan (Ed.), ISBN: 978-953-51-2190-9, InTech, 2015. DOI: 10.5772/61504.Search in Google Scholar

20. Wang H, Yi N, Ji Y. Optical data exchange of differential quadrature phase-shift keying based on four-wave mixing using a semiconductor optical amplifier. Opt Eng. 2016;55:026110.10.1117/1.OE.55.2.026110Search in Google Scholar

21. Wang D, Wu Z, Zhang M, Tang X. Multifunctional all-optical signal processing scheme for wavelength-division-multiplexing multicast, wavelength conversion, format conversion, and all-optical encryption using hybrid modulation format exclusive-OR gates based on four-wave mixing in highly nonlinear fiber. Appl Opt. 2018;57:1562–8.10.1364/AO.57.001562Search in Google Scholar PubMed

22. Chattopadhyay T, Roy JN. Polarization-encoded all-optical quaternary universal inverter and design of multivalued flip-flop. Opt Eng. 2010;49:035201–035201.10.1117/1.3362897Search in Google Scholar

23. Garai SK. All-optical quaternary logic gates–An extension of binary logic gates. Opt Laser Technol. 2015;67:125–36.10.1016/j.optlastec.2014.10.012Search in Google Scholar

24. Mukhopadhyay S. Binary optical data subtraction using ternary digital representation technique in optical arithmetic problems. Appl Opt. 1992;4622:31.10.1364/AO.31.004622Search in Google Scholar PubMed

25. Ho K-P, Cuei H-W. Generation of arbitrary quadrature signals using one dual-drive modulator. J Lightwave Technol. 2005;23:764–70.10.1109/JLT.2004.838855Search in Google Scholar

26. Ozaki J, Ogiso Y, Nakano S. High-speed modulator for next-generation large-capacity coherent optical networks. NTT Tech Rev. 2018;16:1–8.10.53829/ntr201804ra2Search in Google Scholar

Received: 2019-06-15
Accepted: 2019-10-24
Published Online: 2019-11-09
Published in Print: 2024-01-29

© 2019 Walter de Gruyter GmbH, Berlin/Boston

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