Enhanced Inhibited Mode-Coupling: Multi-Mode Hollow-Core Anti-Resonant Fiber Designs

被引:2
作者
Al Mahfuz, Mohammad [1 ]
Habib, Md Selim [1 ]
机构
[1] Florida Inst Technol, Dept Elect Engn & Comp Sci, Melbourne, FL 32901 USA
关键词
Electron tubes; Claddings; Optical fiber communication; Couplings; Silicon compounds; Geometry; Optical fiber polarization; High power laser beam delivery; hollow-core anti-resonant fiber (HCARF); inhibited mode-coupling; multi-mode guidance; SINGLE-MODE; GUIDANCE; TRANSMISSION; LIGHT;
D O I
10.1109/JSTQE.2024.3417824
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Understanding the interplay between the core-guided modes and tube-modes of hollow-core anti-resonant fiber (HCARF) is essential to achieve low-loss and multi-mode guidance. In this paper, we thoroughly investigated the coupling between the core-guided modes and tube-modes of various HCARFs using extensive analytical and finite-element modeling with the aim of achieving multi-mode guidance. We found that the coupling between the core-guided modes and tube-modes can significantly be enhanced by modifying and placing the cladding tubes of nested HCARFs. We proposed a modified nested HCARF that significantly enhances the inhibited-coupling (IC) between the core-guided modes and tube-modes compared to a regular and nested HCARF design. Due to the enhanced IC between the core-guided modes and tube-modes resulting from their phase mismatch, modified nested HCARF can support as high as 50 distinct spatial modes with propagation loss $< $10 dB/km and also demonstrate low-bend loss upon tight bending at 1064 nm. Our study will provide a better understanding of the coupling between the core-guided modes and tube-modes for designing multi-mode HCARFs. It is anticipated that the extraordinary optical properties of the proposed fiber can be beneficial for several applications including high power laser beam delivery, short-haul communication, and ultrafast nonlinear optics.
引用
收藏
页数:9
相关论文
共 50 条
[41]   Interband Short Reach Data Transmission in Ultrawide Bandwidth Hollow Core Fiber [J].
Sakr, H. ;
Hong, Y. ;
Bradley, T. D. ;
Jasion, G. T. ;
Hayes, J. R. ;
Kim, H. ;
Davidson, I. A. ;
Fokoua, E. Numkam ;
Chen, Y. ;
Bottrill, K. R. H. ;
Taengnoi, N. ;
Wheeler, N., V ;
Petropoulos, P. ;
Richardson, D. J. ;
Poletti, F. .
JOURNAL OF LIGHTWAVE TECHNOLOGY, 2020, 38 (01) :159-165
[42]   Designing multi-mode anti-resonant hollow-core fibers for industrial laser power delivery [J].
Shere, William ;
Fokoua, Eric Numkam ;
Jasion, Gregory T. ;
Poletti, Francesco .
OPTICS EXPRESS, 2022, 30 (22) :40425-40440
[43]   Understanding the impact of cladding modes in multi-mode hollow-core anti-resonant fibres [J].
Shere, William ;
Jasion, Gregory T. ;
Fokoua, Eric Numkam ;
Poletti, Francesco .
OPTICAL FIBER TECHNOLOGY, 2022, 71
[44]  
Shere W, 2021, 2021 OPTICAL FIBER COMMUNICATIONS CONFERENCE AND EXPOSITION (OFC)
[45]   Broadband robustly single-mode hollow-core PCF by resonant filtering of higher-order modes [J].
Uebel, Patrick ;
Guenendi, Mehmet C. ;
Frosz, Michael H. ;
Ahmed, Goran ;
Edavalath, Nitin N. ;
Menard, Jean-Michel ;
Russell, Philip St. J. .
OPTICS LETTERS, 2016, 41 (09) :1961-1964
[46]   Multi-nested antiresonant hollow-core fiber with ultralow loss and single-mode guidance [J].
Wang, Yuxi ;
Chang, Wonkeun .
OPTICS EXPRESS, 2023, 31 (11) :18250-18264
[47]  
Winter B., 2019, P LAS SCI
[48]   Low-loss multi-mode anti-resonant hollow-core fibers [J].
Wu, Dakun ;
Yu, Fei ;
Wu, Cheng ;
Zhao, Meng ;
Zheng, Jinhu ;
Hu, Lili ;
Knights, Jonathan .
OPTICS EXPRESS, 2023, 31 (13) :21870-21880
[49]   Analytic model for the complex effective index of the leaky modes of tube-type anti-resonant hollow core fibers [J].
Zeisberger, Matthias ;
Schmidt, Markus A. .
SCIENTIFIC REPORTS, 2017, 7
[50]   Low-latency wavelength-switched clock-synchronized intra-data center interconnects enabled by hollow core fiber [J].
Zhou, Zichuan ;
Dzieciol, Hubert ;
Clark, Kari ;
Luo, Yuan ;
Richardson, David ;
Poletti, Francesco ;
Bayvel, Polina ;
Slavik, Radan ;
Liu, Zhixin .
OPTICS EXPRESS, 2023, 31 (15) :24739-24748