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
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.