Transverse coupling of light into the core of a photonic crystal fibre

Author(s):  
D. J. Kan ◽  
G. D. Marshall ◽  
L. C. Botten ◽  
A. A. Asatryan ◽  
M. J. Withford
2009 ◽  
Vol 17 (3) ◽  
Author(s):  
M. Franczyk ◽  
R. Stępień ◽  
D. Pysz ◽  
I. Kujawa ◽  
R. Buczyński ◽  
...  

AbstractWe demonstrate the 3% mol ytterbium doped phosphate glass air-clad photonic crystal fibre (PCF) laser of 43-cm length in single-mode operation. The fabrication and testing of the laser is introduced. The laser has the diameter of the core of 12 µm created in photonic microstructure and generates at wavelength of 1030 nm. Near 4-W output power and 14.6% slope efficiency against the launched pump power is demonstrated in preliminary characterization. The difference of refractive indices achieved in doped and undoped glass is Δn = 0.0004. We used the doped glass with the negative core-cladding Δn to assure the photonic crystal fibre way of single-mode propagation.


Author(s):  
John Holdsworth ◽  
Somnath Bandyopadhyay ◽  
John Canning ◽  
Michael Stevenson ◽  
Jason DeIuliis

2020 ◽  
Vol 9 (1) ◽  
Author(s):  
Hao Lin ◽  
Ling Lu

AbstractThe success of photonic crystal fibres relies largely on the endless variety of two-dimensional photonic crystals in the cross-section. Here, we propose a topological bandgap fibre whose bandgaps along in-plane directions are opened by generalised Kekulé modulation of a Dirac lattice with a vortex phase. Then, the existence of mid-gap defect modes is guaranteed to guide light at the core of this Dirac-vortex fibre, where the number of guiding modes equals the winding number of the spatial vortex. The single-vortex design provides a single-polarisation single-mode for a bandwidth as large as one octave.


2021 ◽  
pp. 109771
Author(s):  
Mahfuza Begum ◽  
A.K.M. Mizanur Rahman ◽  
H.A. Abdul-Rashid ◽  
Z. Yusoff ◽  
Siti Nurasiah Mat Nawi ◽  
...  

Sensors ◽  
2021 ◽  
Vol 21 (1) ◽  
pp. 284
Author(s):  
Bowei Wan ◽  
Lianqing Zhu ◽  
Xin Ma ◽  
Tianshu Li ◽  
Jian Zhang

Due to their flexible structure and excellent optical characteristics hollow-core photonic crystal fibers (HC-PCFs) are used in many fields, such as active optical devices, communications, and optical fiber sensing. In this paper, to analyze the characteristics of HC-PCFs, we carried out finite element analysis and analyzed the design for the band gap cladding structure of HC-PCFs. First, the characteristics of HC19-1550 and HC-1550-02 in the C-band were simulated. Subsequently, the structural optimization of the seven-cell HC-1550-02 and variations in characteristics of the optimized HC-1550-02 in the wavelength range 1250–1850 nm were investigated. The simulation results revealed that the optimal number of cladding layers is eight, the optimal core radius is 1.8 times the spacing of adjacent air holes, and the optimal-relative thickness of the core quartz-ring is 2.0. In addition, the low confinement loss bandwidth of the optimized structure is 225 nm. Under the transmission bandwidth of the optimized structure, the core optical power is above 98%, the confinement loss is below 9.0 × 10−3 dB/m, the variation range of the effective mode field area does not exceed 10 μm2, and the relative sensitivity is above 0.9570. The designed sensor exhibits an ultra-high relative sensitivity and almost zero confinement loss, making it highly suitable for high-sensitivity gas or liquid sensing.


2002 ◽  
Vol 38 (4) ◽  
pp. 167 ◽  
Author(s):  
I.G. Cormack ◽  
D.T. Reid ◽  
W.J. Wadsworth ◽  
J.C. Knight ◽  
P. St.J. Russell

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