{"title":"Modeling of Multi Hermite-Gaussian MDM Based Passive Star ITU G.989.x Standardardized PON System","authors":"Meet Kumari","doi":"10.1002/ett.70051","DOIUrl":null,"url":null,"abstract":"<div>\n \n <p>Passive optical network (PON) is one of the key enabling technologies to fulfill the latest exceptional bandwidth demand owing to an exponential rise of Internet data traffic induced by the expansion of bandwidth-hungry applications services. The potential of using passive star topology for ITU-T G.989.x standardardized next generation PON incorporating vertical cavity surface emitting laser input source, is proposed in this paper. Mode division multiplexing (MDM) technique employing Hermite-Gaussian (HG<sub>10</sub> and HG<sub>20</sub>) modes are used to enhance the channel capacity at bidirectional 80 Gbps traffic rate. By utilizing polarization mode dispersion (PMD) emulator, this proposed system is promising since it offers good tolerance ability of anti-PMD, anti-dispersion, suppression of nonlinear effects and high spectrum effectiveness at high-speed transmission. Impressively, faithful 600 and 590 m range is obtained at HG<sub>10</sub> and HG<sub>20</sub> modes respectively, with clear eye patterns at bit error rate of 10<sup>−9</sup> for 1596–1598.4 nm in downlink. In uplink, faithful 600 and 530–600 m distance is achieved for 1524–1526.4 nm at HG<sub>10</sub> and HG<sub>20</sub> respectively. For variable laser temperature, maximum tolerable temperature of 20°C for both modes in downlink and 20°C at HG<sub>10</sub> as well as 14C at HG<sub>20</sub> is observed in uplink, over 600 m range. Besides, the proposed design undergoes ∼1e-30 at HG10 and ∼1e-35 at HG20 coupling coefficients for linearly polarized (LP[0,1] to LP[−4,3]) modes. It is also analyzed that maximum 3.99 dB gain and 84.58 dB optical signal-to-noise ratio is obtained for the proposed scheme. This design does not suffer from shot, thermal and phase noise and offers optimum performance than existing systems.</p>\n </div>","PeriodicalId":23282,"journal":{"name":"Transactions on Emerging Telecommunications Technologies","volume":"36 1","pages":""},"PeriodicalIF":2.5000,"publicationDate":"2024-12-30","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Transactions on Emerging Telecommunications Technologies","FirstCategoryId":"94","ListUrlMain":"https://onlinelibrary.wiley.com/doi/10.1002/ett.70051","RegionNum":4,"RegionCategory":"计算机科学","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q3","JCRName":"TELECOMMUNICATIONS","Score":null,"Total":0}
引用次数: 0
Abstract
Passive optical network (PON) is one of the key enabling technologies to fulfill the latest exceptional bandwidth demand owing to an exponential rise of Internet data traffic induced by the expansion of bandwidth-hungry applications services. The potential of using passive star topology for ITU-T G.989.x standardardized next generation PON incorporating vertical cavity surface emitting laser input source, is proposed in this paper. Mode division multiplexing (MDM) technique employing Hermite-Gaussian (HG10 and HG20) modes are used to enhance the channel capacity at bidirectional 80 Gbps traffic rate. By utilizing polarization mode dispersion (PMD) emulator, this proposed system is promising since it offers good tolerance ability of anti-PMD, anti-dispersion, suppression of nonlinear effects and high spectrum effectiveness at high-speed transmission. Impressively, faithful 600 and 590 m range is obtained at HG10 and HG20 modes respectively, with clear eye patterns at bit error rate of 10−9 for 1596–1598.4 nm in downlink. In uplink, faithful 600 and 530–600 m distance is achieved for 1524–1526.4 nm at HG10 and HG20 respectively. For variable laser temperature, maximum tolerable temperature of 20°C for both modes in downlink and 20°C at HG10 as well as 14C at HG20 is observed in uplink, over 600 m range. Besides, the proposed design undergoes ∼1e-30 at HG10 and ∼1e-35 at HG20 coupling coefficients for linearly polarized (LP[0,1] to LP[−4,3]) modes. It is also analyzed that maximum 3.99 dB gain and 84.58 dB optical signal-to-noise ratio is obtained for the proposed scheme. This design does not suffer from shot, thermal and phase noise and offers optimum performance than existing systems.
期刊介绍:
ransactions on Emerging Telecommunications Technologies (ETT), formerly known as European Transactions on Telecommunications (ETT), has the following aims:
- to attract cutting-edge publications from leading researchers and research groups around the world
- to become a highly cited source of timely research findings in emerging fields of telecommunications
- to limit revision and publication cycles to a few months and thus significantly increase attractiveness to publish
- to become the leading journal for publishing the latest developments in telecommunications