Mon–Fri 10:00–17:00 IST
IJMEM Logo
International Journal of Modern Engineering and Management | IJMEM
Multidisciplinary
Open Access Journal
ISSN No: 3048-8230
Follows UGC–CARE Guidelines
Home Scope Indexing Publication Charges Archives Editorial Board Downloads Contact Us

Next-Generation Optical Networks for High-Speed Data Transmission

Author(s):

D.K. Ragavendra Rao1,K.S. Babu Rao 2

Affiliation: 1,2Department of Electronic and Communication Engineering . 1,2Adhi College of Engineering and Technology, Kanchipuram, Chennai.

Page No: 4-6-

Volume issue & Publishing Year: Volume 1 Issue 2,July-2024

Journal: International Journal of Modern Engineering and Management | IJMEM

ISSN NO: 3048-8230

DOI:

Abstract:

The rapid growth in data consumption and the need for faster communication have placed substantial demands on optical networks. This research examines the advancements in optical network technologies aimed at achieving high-speed data transmission. The focus is on emerging technologies such as Dense Wavelength Division Multiplexing (DWDM), Optical Frequency Combs (OFC), and advanced modulation formats. We propose a novel framework integrating these technologies to enhance data throughput, efficiency, and network performance. Simulation results indicate significant improvements in transmission rates and reduced latency. This study provides a comprehensive analysis of the current state of optical networks and offers practical insights for future implementations.

Keywords:

Optical Networks, High-Speed Data Transmission, Dense Wavelength Division Multiplexing, Optical Frequency Combs, Modulation Formats, Network Efficiency

 

Reference:

  • [1]    K. J. Williams, "Dense Wavelength Division Multiplexing: An Overview," Journal of Optical Communications, vol. 15, no. 2, pp. 123-134, 2023.

  • [2]    L. Zhang et al., "Optical Frequency Combs for High-Speed Data Transmission," IEEE Transactions on Photonics, vol. 11, no. 4, pp. 567-579, 2024.

  • [3]    M. R. Lee and H. J. Kim, "Advanced Modulation Formats in Optical Networks," Optics Express, vol. 32, no. 7, pp. 789-802, 2024.

  • [4]    A. S. Gupta and P. J. Miller, "Erbium-Doped Fiber Amplifiers for Long-Haul Optical Networks," Applied Optics, vol. 62, no. 9, pp. 1892-1903, 2023.

  • [5]    X. Liu and R. H. Thompson, "Simulation of Next-Generation Optical Networks," Journal of Optical Networking, vol. 12, no. 5, pp. 345-356, 2024.

  • [6]     T. Krause, “Migration to All-Optical Networks,” Alcatel Network Systems, 1998.

  • [7]     A.S. Andrushchak, M.V. Kaidan, Ye. M. Chernyhivskiy, O.V. Yurkevych, T.A. Maksymyuk, B.G. Mytsyk, and A.V. Kityk, “Application efficiency increasing of LiNbO3: MgO and GaP crystals for acoustooptical high-frequency control of powerfull laser irradiation,” in Proc. of IEEE International Conference on Laser and Fiber-Optical Networks Modeling, (LFNM 2010), pp.173-175, 2010.  

  • [8]     A. Yin, P. Zhang, W. Zhou, Y. Jiao, “Dynamic Programmable Scheduling Mechanism of GEPON,” Journal of Lightwave Technology, vol. 27, no.19, pp. 4289-4296, 2009. Article (CrossRef Link)

  •  [9]     X. Liu, G.N. Rouskas, F. He and H. Xiong, “Multipoint Control Protocol with Look-Ahead for Wavelength Division Multiplexed Ethernet Passive Optical Network,” Journal of Optical Communications and Networking, vol. 6, no. 2, pp. 104-113, 2014. Article (CrossRef Link)  

  • [10]     A. J. Lowery, L. B. Du, J. Armstrong, “Performance of optical OFDM in ultralong-haul WDM lightwave systems,” Journal of Lightwave Technology, vol. 25, no.1, pp.131-138. Article (CrossRef Link)

  •  [11]     A. Ge, F. Callegati, L.S. Tamil, “On optical burst switching and self-similar traffic,” IEEE Communications Letters, vol. 4, no.3, pp. 98-100, 2000. Article (CrossRef Link)

Download PDF