Reconfiguration of optical continuous-wave radiations by bright soliton trains in gas-filled hollow-core photonic crystals (HC-PCFs)

Author(s):  
Duplex S. Mbieda Petmegni ◽  
F.G. Mbieda Ngomegni ◽  
B. Essimbi Zobo
2021 ◽  
Author(s):  
Duplex Steve MBIEDA PETMEGNI ◽  
Frank Gaetan Mbieda Ngomegni ◽  
Alain Dikande ◽  
B. Z. Essimbi

2022 ◽  
Vol 11 (1) ◽  
Author(s):  
Zhiyue Zhou ◽  
Zefeng Wang ◽  
Wei Huang ◽  
Yulong Cui ◽  
Hao Li ◽  
...  

AbstractFibre lasers operating at the mid-IR have attracted enormous interest due to the plethora of applications in defence, security, medicine, and so on. However, no continuous-wave (CW) fibre lasers beyond 4 μm based on rare-earth-doped fibres have been demonstrated thus far. Here, we report efficient mid-IR laser emission from HBr-filled silica hollow-core fibres (HCFs) for the first time. By pumping with a self-developed thulium-doped fibre amplifier seeded by several diode lasers over the range of 1940–1983 nm, narrow linewidth mid-IR emission from 3810 to 4496 nm has been achieved with a maximum laser power of about 500 mW and a slope efficiency of approximately 18%. To the best of our knowledge, the wavelength of 4496 nm with strong absorption in silica-based fibres is the longest emission wavelength from a CW fibre laser, and the span of 686 nm is also the largest tuning range achieved to date for any CW fibre laser. By further reducing the HCF transmission loss, increasing the pump power, improving the coupling efficiency, and optimizing the fibre length together with the pressure, the laser efficiency and output power are expected to increase significantly. This work opens new opportunities for broadly tunable high-power mid-IR fibre lasers, especially beyond 4 μm.


2013 ◽  
Vol 75 (1-2) ◽  
pp. 201-207 ◽  
Author(s):  
Hua-Jie Jiang ◽  
Jia-Jie Xiang ◽  
Chao-Qing Dai ◽  
Yue-Yue Wang

2017 ◽  
Vol 123 (6) ◽  
Author(s):  
Duplex S. Mbieda Petmegni ◽  
Alain M. Dikandé ◽  
B. Z. Essimbi

Author(s):  
Jian Wang ◽  
Jing Ouyang ◽  
Leo T. Varghese ◽  
Li Fan ◽  
Minghao Qi

2014 ◽  
Vol 2 (31) ◽  
pp. 6256-6263 ◽  
Author(s):  
Nathalie Destouches ◽  
Nicolas Crespo-Monteiro ◽  
Guy Vitrant ◽  
Yaya Lefkir ◽  
Stéphanie Reynaud ◽  
...  

We show the formation and explain the optical origin of self-organized metallic photonic crystals buried in thin films.


2021 ◽  
Vol 118 (16) ◽  
pp. e2021304118
Author(s):  
Chun-Wei Chen ◽  
Iam Choon Khoo

State-of-the-art nanostructured chiral photonic crystals (CPCs), metamaterials, and metasurfaces have shown giant optical rotatory power but are generally passive and beset with large optical losses and with inadequate performance due to limited size/interaction length and narrow operation bandwidth. In this work, we demonstrate by detailed theoretical modeling and experiments that a fully developed CPC, one for which the number of unit cells N is high enough that it acquires the full potentials of an ideal (N → ∞) crystal, will overcome the aforementioned limitations, leading to a new generation of versatile high-performance polarization manipulation optics. Such high-N CPCs are realized by field-assisted self-assembly of cholesteric liquid crystals to unprecedented thicknesses not possible with any other means. Characterization studies show that high-N CPCs exhibit broad transmission maxima accompanied by giant rotatory power, thereby enabling large (>π) polarization rotation with near-unity transmission over a large operation bandwidth. Polarization rotation is demonstrated to be independent of input polarization orientation and applies equally well on continuous-wave or ultrafast (picosecond to femtosecond) pulsed lasers of simple or complex (radial, azimuthal) vector fields. Liquid crystal–based CPCs also allow very wide tuning of the operation spectral range and dynamic polarization switching and control possibilities by virtue of several stimuli-induced index or birefringence changing mechanisms.


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