LAPSE:2023.9204
Published Article

LAPSE:2023.9204
Capacity Enhancement for Free Space Optics Transmission System Using Orbital Angular Momentum Optical Code Division Multiple Access in 5G and beyond Networks
February 27, 2023
Abstract
This paper introduces a novel free space optics (FSO) communication system for future-generation high-speed networks. The proposed system integrates orbital angular momentum (OAM) modes with an optical code division multiple access (OCDMA) technique. Two OAM beams are used (LG0,0 and LG0,10), each of which is used for transmitting three independent channels. Each channel is assigned by fixed right shift (FRS) codes and carries 10 Gbps of information data. The performance of the proposed model is evaluated under different foggy and dust storm conditions. Furthermore, the performance of two cities with different geographical locations, Alexandria city in Egypt and Srinagar city in India, is investigated to demonstrate its ability to be implemented in future generations. Bit error rate (BER), eye diagrams, received optical power (ROP), and channel capacity are used for studying the performance of the proposed system. The observed simulation results show successful transmission of 60 Gbps overall capacity with the longest propagation FSO range for Alexandria city, which is 1400 m. Because dust storms have a large attenuation when compared to different foggy conditions, the proposed model had the shortest propagation range of 315 m under low dust (LD), 105 m under moderate dust (MD), and 40 m under heavy dust (HD). Furthermore, the cloudy weather conditions that affect Srinagar city, which is considered a hilly area, make our suggested model achieve 1000 m.
This paper introduces a novel free space optics (FSO) communication system for future-generation high-speed networks. The proposed system integrates orbital angular momentum (OAM) modes with an optical code division multiple access (OCDMA) technique. Two OAM beams are used (LG0,0 and LG0,10), each of which is used for transmitting three independent channels. Each channel is assigned by fixed right shift (FRS) codes and carries 10 Gbps of information data. The performance of the proposed model is evaluated under different foggy and dust storm conditions. Furthermore, the performance of two cities with different geographical locations, Alexandria city in Egypt and Srinagar city in India, is investigated to demonstrate its ability to be implemented in future generations. Bit error rate (BER), eye diagrams, received optical power (ROP), and channel capacity are used for studying the performance of the proposed system. The observed simulation results show successful transmission of 60 Gbps overall capacity with the longest propagation FSO range for Alexandria city, which is 1400 m. Because dust storms have a large attenuation when compared to different foggy conditions, the proposed model had the shortest propagation range of 315 m under low dust (LD), 105 m under moderate dust (MD), and 40 m under heavy dust (HD). Furthermore, the cloudy weather conditions that affect Srinagar city, which is considered a hilly area, make our suggested model achieve 1000 m.
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Keywords
bit error rate, fixed right shift, free space optics, optical code division multiple access, orbital angular momentum, space division multiplexing
Subject
Suggested Citation
El-Mottaleb SAA, Singh M, Chehri A, Ahmed HY, Zeghid M, Khan AN. Capacity Enhancement for Free Space Optics Transmission System Using Orbital Angular Momentum Optical Code Division Multiple Access in 5G and beyond Networks. (2023). LAPSE:2023.9204
Author Affiliations
El-Mottaleb SAA: Alexandria Higher Institute of Engineering and Technology, Alexandria 21311, Egypt [ORCID]
Singh M: Department of Electronics and Communication Engineering, University Institute of Engineering, Chandigarh University, Mohali 140413, Punjab, India
Chehri A: Department of Mathematics and Computer Science, Royal Military College of Canada, Kingston, ON K7K 7B4, Canada [ORCID]
Ahmed HY: Department of Electrical Engineering, College of Engineering in Wadi Alddawasir, Prince Sattam Bin Abdulaziz University, Wadi Alddawasir 11991, Saudi Arabia [ORCID]
Zeghid M: Department of Electrical Engineering, College of Engineering in Wadi Alddawasir, Prince Sattam Bin Abdulaziz University, Wadi Alddawasir 11991, Saudi Arabia; Electronics and Micro-Electronics Laboratory (E. μ. E. L.), Faculty of Sciences, University of M [ORCID]
Khan AN: Department of Electrical Engineering, Jalozai Campus, University of Engineering and Technology, Peshawar 25120, Pakistan [ORCID]
Singh M: Department of Electronics and Communication Engineering, University Institute of Engineering, Chandigarh University, Mohali 140413, Punjab, India
Chehri A: Department of Mathematics and Computer Science, Royal Military College of Canada, Kingston, ON K7K 7B4, Canada [ORCID]
Ahmed HY: Department of Electrical Engineering, College of Engineering in Wadi Alddawasir, Prince Sattam Bin Abdulaziz University, Wadi Alddawasir 11991, Saudi Arabia [ORCID]
Zeghid M: Department of Electrical Engineering, College of Engineering in Wadi Alddawasir, Prince Sattam Bin Abdulaziz University, Wadi Alddawasir 11991, Saudi Arabia; Electronics and Micro-Electronics Laboratory (E. μ. E. L.), Faculty of Sciences, University of M [ORCID]
Khan AN: Department of Electrical Engineering, Jalozai Campus, University of Engineering and Technology, Peshawar 25120, Pakistan [ORCID]
Journal Name
Energies
Volume
15
Issue
19
First Page
7100
Year
2022
Publication Date
2022-09-27
ISSN
1996-1073
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Original Submission
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PII: en15197100, Publication Type: Journal Article
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LAPSE:2023.9204
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https://doi.org/10.3390/en15197100
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