Ultra-long haul high speed 96 × 40 GB/s radio over IsOWC system employing advanced modulation scheme

Q3 Engineering Journal of Optical Communications Pub Date : 2023-09-08 DOI:10.1515/joc-2023-0175
Sooraj Parkash
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Abstract

Abstract This paper successfully demonstrates that point-to-point (P2P) superdense wavelength division multiplexing (SDWDM) based on the radio over intersatellite optical wireless communication (Ro-IsOWC) system of 96 channels separated by a 100 GHz bandwidth with 40 GB/s data rate on each stream at a 10,000 km link range has been designed and investigated. The performance of the proposed work has been evaluated by considering the comparison of advanced modulation schemes such as carrier-suppressed return-to-zero (CSRZ), duobinary return-to-zero (DRZ), and modified duobinary return-to-zero (MDRZ) with an optical preamplifier on the bases of bit error rate (BER), quality factor, eye height, and optical signal-to-noise ratio (OSNR) in the clear weather condition. Moreover, the effects of internal parameters such as transceiver aperture diameter and gain of an optical amplifier also have been analyzed with an optimized modulated system. Apart from this, the system performance also has been assessed under varying data rates and OWC frequency ranges with the best-suited modulation format. It has been found that the CSRZ modulation format has shown robust performance and can achieve BER as better as 10−09 with a 5.5 dB quality factor for all wavelengths. It also has been observed that the quality of the received signal deteriorates below an unacceptable value for data rate and link distance beyond 40 GB/s and 10,000 km, respectively.
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超长距离高速96×40 采用先进调制方案的GB/s IsOWC无线电系统
摘要:本文成功地设计和研究了基于星间光无线通信(Ro-IsOWC)的点对点(P2P)超密集波分复用(SDWDM)系统,该系统具有96个信道,带宽为100 GHz,链路距离为10,000 km,每个流的数据速率为40 GB/s。在晴朗天气条件下,基于误码率(BER)、质量因子、眼高和光信噪比(OSNR),通过比较载波抑制归零(CSRZ)、双二进制归零(DRZ)和带光学前置放大器的改进双二进制归零(MDRZ)等先进调制方案,对所提工作的性能进行了评估。此外,通过优化后的调制系统,分析了光放大器孔径和增益等内部参数对调制效果的影响。除此之外,系统性能也被评估在不同的数据速率和OWC频率范围与最适合的调制格式。研究发现,CSRZ调制格式表现出稳健的性能,所有波长的BER均可达到10−09,质量因子为5.5 dB。还观察到,当数据速率和链路距离分别超过40 GB/s和10,000 km时,接收到的信号质量会下降到不可接受的值以下。
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来源期刊
Journal of Optical Communications
Journal of Optical Communications Engineering-Electrical and Electronic Engineering
CiteScore
2.90
自引率
0.00%
发文量
86
期刊介绍: This is the journal for all scientists working in optical communications. Journal of Optical Communications was the first international publication covering all fields of optical communications with guided waves. It is the aim of the journal to serve all scientists engaged in optical communications as a comprehensive journal tailored to their needs and as a forum for their publications. The journal focuses on the main fields in optical communications
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