Optimizing graded-index few-mode fiber for space division multiplexing

  • Ojha K
  • Mishra D
  • Appaiah K
  • et al.
9Citations
Citations of this article
10Readers
Mendeley users who have this article in their library.
Get full text

Abstract

We investigate the graded-index few-mode fiber (GI-FMF) to realize a 4-LP-mode (i.e. LP 01 , LP 11 , LP 21 , and LP 02 ) fiber for mode-division-multiplexed transmission. This study optimizes the GI-FMF for both, first, for large effective indices differences (Δ n eff ), and second, for low differential mode delay (DMD) between any two LP modes, for different optimized parameters. Thus, it shows that GI-FMF is suitable for both weakly-coupled few-mode fiber (WC-FMF) as well as strongly-coupled few-mode fiber (SC-FMF) via adjusting the profile parameter ( α ), refractive index difference between core and cladding ( n co − n clad ), and core radius ( a ). We report the optimized parameters for WC-GI-FMF with large effective indices difference (Δ n eff ) of 0.6 × 10 −3 and low |DMD| of 5.4 ns/km while the minimum effective mode area (Min.| A eff |) is 80 µm 2 and bending loss (BL) of the highest order mode is 0.005 dB/turn (much lower than 10 dB/turn) at a 10 mm bend radius. Here, we could break down the degeneracy between LP 21 and LP 02 mode, which remains a challenging task in GI-FMF. To the best of our knowledge, this is the lowest DMD (5.4 ns/km) ever reported for such a weakly-coupled (Δ n eff = 0.6 × 10 −3 ) 4-LP-mode FMF. Similarly, we optimized the parameters for SC-GI-FMF with Δ n eff of 0.1 × 10 −3 and the lowest DMD of 0.9 ns/km while Min.| A eff | is ≫ 100 µm 2 and BL of higher order mode is 6 dB/turn (< 10 dB/turn) at 10 mm bend radius. Further, we investigate narrow air trench-assisted SC-GI-FMF to reduce the DMD and achieve the lowest DMD of 16 ps/km for a 4-LP-mode GI-FMF with a minimum Δ n eff of 0.7 × 10 −5 .

Cite

CITATION STYLE

APA

Ojha, K., Mishra, D., Appaiah, K., & Jain, D. (2023). Optimizing graded-index few-mode fiber for space division multiplexing. Optics Express, 31(13), 21784. https://doi.org/10.1364/oe.491742

Register to see more suggestions

Mendeley helps you to discover research relevant for your work.

Already have an account?

Save time finding and organizing research with Mendeley

Sign up for free