Optical phase-locked loop phase noise in 5G mm-wave OFDM ARoF systems

Delphin Dodane, Javier Perez Santacruz (Corresponding author), Jerome Bourderionnet, Simon Rommel, Gilles Feugnet, A. Jurado-Navas, Laurent Vivien, Idelfonso Tafur Monroy

Onderzoeksoutput: Bijdrage aan tijdschriftTijdschriftartikelAcademicpeer review

11 Citaten (Scopus)
255 Downloads (Pure)

Samenvatting

The use of millimeter-wave (mm-wave) frequencies is required in order to support the increasing number of connected devices expected from the fifth generation (5G) of mobile communications. Subsequently, the generation of radio-frequency (RF) carriers ranging from 10 GHz to 300 GHz and their transport through optical distribution network (ODN) is a key element of the future 5G fronthaul. Optically assisted RF carrier generation is one of the most promising solutions to tackle this issue, allowing a wide use of analog radio-over-fiber (ARoF) architectures. However the main limitation of these optical methods is related to the finite coherence of lasers sources, which can dramatically degrade data transmission in analog formats. To mitigate its impact, the use of orthogonal frequency-division multiplexing (OFDM) as the 5G standard allows employing efficient phase noise compensation algorithms. Therefore, in this study, we present an experimental demonstration of a mm-wave generation technique based on an optical phase-locked loop (OPLL) that fulfills the frequency specifications for 5G. Then, an algorithm is introduced that improves data recovery at reception and reduces the impact of a possible high phase noise carrier. Finally, a back-to-back data transmission experiment is performed, demonstrating the efficiency of the algorithm to reach the 5G requirements. These results emphasize the use of OPLLs as a viable solution to generate mm-wave carriers for 5G and beyond.
Originele taal-2Engels
Artikelnummer128872
Aantal pagina's9
TijdschriftOptics Communications
Volume526
DOI's
StatusGepubliceerd - 1 jan. 2023

Financiering

This work was partially supported by the ITN 5G STEP-FWD and blueSPACE projects which have received funding from the European Union\u2019s Horizon2020 research and innovation programme under grant agreements No. 722429 and 762055 . This work was partially supported by the ITN 5G STEP-FWD and blueSPACE projects which have received funding from the European Union's Horizon2020 research and innovation programme under grant agreements No. 722429 and 762055. The authors declare the following financial interests/personal relationships which may be considered as potential competing interests: This work was partially financed by the 5G STEP FWD and blueSPACE projects (GA nos. 722429 and 762055).

FinanciersFinanciernummer
European Union’s Horizon Europe research and innovation programme
European Union’s Horizon Europe research and innovation programme722429, 762055

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    • BlueSpace

      Tafur Monroy, I. (Project Manager), Rommel, S. (Projectmedewerker), Patterson, D. (Projectmedewerker), Cimoli, B. (Projectmedewerker), Witteveen, F. (Projectmedewerker), Sanders, R. (Project communicatie medewerker) & Barros Carvalho, J. (Projectmedewerker)

      1/06/1731/05/20

      Project: Onderzoek direct

    • 5G STEP FWD

      Tafur Monroy, I. (Project Manager), Witteveen, F. (Projectmedewerker), Konstantinou, D. (Projectmedewerker), Perez Santacruz, J. (Projectmedewerker), Sanders, R. (Project communicatie medewerker), Rommel, S. (Projectmedewerker) & Tafur Monroy, I. (Projectmedewerker)

      1/06/171/05/23

      Project: Onderzoek direct

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