On the origin of core-to-core variations in multi-core fibre Bragg gratings

被引:3
|
作者
Ellis, S. C. [1 ,2 ,3 ]
Min, S. -S. [2 ,3 ]
Leon-Saval, S. G. [2 ,3 ]
Bland-Hawthorn, J. [2 ,3 ]
机构
[1] Macquarie Univ, Fac Sci & Engn, Australian Astron Observ, N Ryde, NSW 2109, Australia
[2] Univ Sydney, Sch Phys, Sydney Inst Astron SIfA, Sydney, NSW 2006, Australia
[3] Univ Sydney, Sch Phys, SAIL, Sydney, NSW 2006, Australia
来源
ADVANCES IN OPTICAL AND MECHANICAL TECHNOLOGIES FOR TELESCOPES AND INSTRUMENTATION III | 2018年 / 10706卷
关键词
Multicore fibre; fibre Bragg gatings; astrophotonics; OH suppression; OH SUPPRESSION; PHOTONIC LANTERN; FILTERS;
D O I
10.1117/12.2312895
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Fibre Bragg gratings have been demonstrated to be a powerful tool with which to filter atmospheric emission lines from astronomical spectra. Multicore fibre technology has the potential to simplify the fabrication of fibre Bragg gratings, since all cores can be inscribed simultaneously rather than individually which is both time consuming and expensive to do. Solving the multicore challenge has fundamental implications for many fields outside of astrophotonics. To realise a working multicore fibre Bragg grating (MCFBG), all cores must be written with identical gratings providing uniform depth, Bragg wavelength and bandpass. However, to date, all multicore fibre Bragg gratings display a variation in the Bragg wavelength of the central cores compared to the outer cores. This seems to be a property of the multicore fibre itself, and is not due to the Bragg grating writing process. We investigate the origin of these core-to-core variations using finite difference time domain and finite element simulations, combined with analysis of fabricated multicore fibre. We find that the ellipticity of the core, the size of the core, and the coupling between cores all affect the propagation constants. However, the dependence on ellipticity is very weak, and cores would have to be highly deformed in the manufacturing process for this to be a concern. A variation in radius of similar to 2.5% could account for the observed variation in propagation constants. However, the measured variation in the fabricated MCF is too small and does not display any radial trend. The coupling between cores is too small to change the propagation constants significantly, but even if it were significant any effect would be expected increase the Bragg wavelengths of the central cores, the opposite of what is observed.
引用
收藏
页数:12
相关论文
共 50 条
  • [21] Curvature, twist and pose measurements using fiber Bragg gratings in multi-core fiber: A comparative study between helical and straight core fibers
    Khan, Fouzia
    Barrera, David
    Sales, Salvador
    Misra, Sarthak
    SENSORS AND ACTUATORS A-PHYSICAL, 2021, 317
  • [22] Multi-core technologies
    Tarek, T.
    Scientific Computing, 2006, 23 (11):
  • [23] MULTI-CORE CABLES
    WILLIAMS, R
    WIRELESS WORLD, 1971, 77 (1429): : 320 - &
  • [24] Multi-core microprocessors
    Rajaraman V.
    Resonance, 2017, 22 (12) : 1175 - 1192
  • [25] The Multi-Core Challenge
    Ungerer, Theo
    IT-INFORMATION TECHNOLOGY, 2010, 52 (03): : 142 - 146
  • [26] Multi-core technology
    Sci. Comput., 2006, 7 (06):
  • [27] Multi-core fiber Bragg grating developments for OH suppression
    Min, Seong-sik
    Trinh, Christopher
    Leon-Saval, Sergio
    Jovanovic, Nemanja
    Gillingham, Peter
    Bland-Hawthorn, Joss
    Lawrence, Jon
    Birks, Tim A.
    Roth, Martin M.
    Haynes, Roger
    Fogarty, Lisa
    MODERN TECHNOLOGIES IN SPACE-AND GROUND-BASED TELESCOPES AND INSTRUMENTATION II, 2012, 8450
  • [28] Multi-Core Fiber Bragg Grating and Its Sensing Application
    Zhang, Xiaotong
    Wang, Hongye
    Yuan, Tingting
    Yuan, Libo
    SENSORS, 2024, 24 (14)
  • [29] Monitoring sedimentation by radiographic core-to-core correlation
    V. Axelsson
    Geo-Marine Letters, 2001, 21 : 236 - 244
  • [30] Incremental shape measurement with fiber Bragg gratings in a multi-core fiber for three-dimensional paths
    Zhang, Yibo
    Jin, Jing
    Zhu, Yunhong
    OPTICS LETTERS, 2023, 48 (21) : 5595 - 5598