Research and Implementation of OFC-Based Multicarrier Sliceable Bandwidth Variable Transponders in Hybrid Laser/Microwave Satellite Networks

In this paper, a multicarrier sliceable bandwidth variable transponder based on optical frequency comb (OFC) is proposed. The structure of the transponder’s internal switching unit is designed, and the principle of generating ultra-flat OFC based on a standalone dual-parallel Mach-Zehnder...

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Main Authors: Bin Wu, Hao Zhang, Qingchun Zhao
Format: Article
Language:English
Published: IEEE 2025-01-01
Series:IEEE Access
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Online Access:https://ieeexplore.ieee.org/document/11015810/
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author Bin Wu
Hao Zhang
Qingchun Zhao
author_facet Bin Wu
Hao Zhang
Qingchun Zhao
author_sort Bin Wu
collection DOAJ
description In this paper, a multicarrier sliceable bandwidth variable transponder based on optical frequency comb (OFC) is proposed. The structure of the transponder&#x2019;s internal switching unit is designed, and the principle of generating ultra-flat OFC based on a standalone dual-parallel Mach-Zehnder modulator (DPMZM) is analyzed. A scheme for dynamic allocation of multi-channel frequency slots and flexible resource configuration in hybrid laser/satellite networks is provided, and an experimental system is built to test the data transmission and bandwidth allocation capabilities of laser and microwave links. Experimental results indicate that the muticarrier generation unit can produce a 7-line flat OFC with a flatness of 1.6 dB, and the switching unit can achieve channel switching and frequency slot allocation, with a minimum slice width of 12.5 GHz. After passing through this node, the phase noise of the 2 GHz IF signal with frequency offsets at 10 kHz and 100 kHz are &#x2212;59.28 dBc/Hz and &#x2212;87.95 dBc/Hz, respectively, and the bit error rates (BERs) of the recovered baseband data from the laser and microwave links are less than <inline-formula> <tex-math notation="LaTeX">$10^{-9}$ </tex-math></inline-formula>. These results validate the feasibility of the designed transponder to be applied in the key relay nodes of satellite networks. The proposed scheme can solve the problems of low spectrum utilization and the inability to dynamically allocate resources in traditional WDM satellite networks.
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spelling doaj-art-a906ff9f8f8e4e84b635356c78411af62025-08-20T03:24:39ZengIEEEIEEE Access2169-35362025-01-0113930469305610.1109/ACCESS.2025.357378811015810Research and Implementation of OFC-Based Multicarrier Sliceable Bandwidth Variable Transponders in Hybrid Laser/Microwave Satellite NetworksBin Wu0https://orcid.org/0009-0002-8880-8380Hao Zhang1https://orcid.org/0009-0000-4136-102XQingchun Zhao2Hebei Key Laboratory of Marine Perception Network and Data Processing, School of Computer and Communication Engineering, Northeastern University at Qinhuangdao, Qinhuangdao, ChinaHebei Key Laboratory of Marine Perception Network and Data Processing, School of Computer and Communication Engineering, Northeastern University at Qinhuangdao, Qinhuangdao, ChinaHebei Key Laboratory of Marine Perception Network and Data Processing, School of Computer and Communication Engineering, Northeastern University at Qinhuangdao, Qinhuangdao, ChinaIn this paper, a multicarrier sliceable bandwidth variable transponder based on optical frequency comb (OFC) is proposed. The structure of the transponder&#x2019;s internal switching unit is designed, and the principle of generating ultra-flat OFC based on a standalone dual-parallel Mach-Zehnder modulator (DPMZM) is analyzed. A scheme for dynamic allocation of multi-channel frequency slots and flexible resource configuration in hybrid laser/satellite networks is provided, and an experimental system is built to test the data transmission and bandwidth allocation capabilities of laser and microwave links. Experimental results indicate that the muticarrier generation unit can produce a 7-line flat OFC with a flatness of 1.6 dB, and the switching unit can achieve channel switching and frequency slot allocation, with a minimum slice width of 12.5 GHz. After passing through this node, the phase noise of the 2 GHz IF signal with frequency offsets at 10 kHz and 100 kHz are &#x2212;59.28 dBc/Hz and &#x2212;87.95 dBc/Hz, respectively, and the bit error rates (BERs) of the recovered baseband data from the laser and microwave links are less than <inline-formula> <tex-math notation="LaTeX">$10^{-9}$ </tex-math></inline-formula>. These results validate the feasibility of the designed transponder to be applied in the key relay nodes of satellite networks. The proposed scheme can solve the problems of low spectrum utilization and the inability to dynamically allocate resources in traditional WDM satellite networks.https://ieeexplore.ieee.org/document/11015810/Optical frequency combmicrowave photonicshybrid laser/microwave satellite networkswavelength selective switch
spellingShingle Bin Wu
Hao Zhang
Qingchun Zhao
Research and Implementation of OFC-Based Multicarrier Sliceable Bandwidth Variable Transponders in Hybrid Laser/Microwave Satellite Networks
IEEE Access
Optical frequency comb
microwave photonics
hybrid laser/microwave satellite networks
wavelength selective switch
title Research and Implementation of OFC-Based Multicarrier Sliceable Bandwidth Variable Transponders in Hybrid Laser/Microwave Satellite Networks
title_full Research and Implementation of OFC-Based Multicarrier Sliceable Bandwidth Variable Transponders in Hybrid Laser/Microwave Satellite Networks
title_fullStr Research and Implementation of OFC-Based Multicarrier Sliceable Bandwidth Variable Transponders in Hybrid Laser/Microwave Satellite Networks
title_full_unstemmed Research and Implementation of OFC-Based Multicarrier Sliceable Bandwidth Variable Transponders in Hybrid Laser/Microwave Satellite Networks
title_short Research and Implementation of OFC-Based Multicarrier Sliceable Bandwidth Variable Transponders in Hybrid Laser/Microwave Satellite Networks
title_sort research and implementation of ofc based multicarrier sliceable bandwidth variable transponders in hybrid laser microwave satellite networks
topic Optical frequency comb
microwave photonics
hybrid laser/microwave satellite networks
wavelength selective switch
url https://ieeexplore.ieee.org/document/11015810/
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AT haozhang researchandimplementationofofcbasedmulticarriersliceablebandwidthvariabletranspondersinhybridlasermicrowavesatellitenetworks
AT qingchunzhao researchandimplementationofofcbasedmulticarriersliceablebandwidthvariabletranspondersinhybridlasermicrowavesatellitenetworks