Optical Gaussian Notch Filter Based on Periodic Microbent Fiber Bragg Grating
Оптический гауссов фильтр режекторного типа на основе периодически микросогнутой волоконной брэгговской решётки
2014-01-06
SCID: 54.1/6qtt3azn
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Bragg transmission lossGaussian notch filterfiber Bragg gratingoptical notch filterperiodic microbending
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Abstract (AI)
In this paper, we demonstrated an optical notch filter constructed from a periodic microbent fiber Bragg grating attained by using two copper-wire-wound slabs. In the reflection spectrum, sideband peaks are created as a result of mechanically induced modulation on the grating period, and a higher number of peaks are observed when greater modulation is applied. The peak wavelength spacing depends upon the period of microbending, which can be varied by changing the diameter of the winding wire or the angle of placement of fiber Bragg grating placed in between the two wound slabs. Moreover, the trend of Bragg transmission loss (BTL) for the transmission spectrum changes with the changing of modulation period and amplitude. The proposed technique is very stable, and it can be used as an optical Gaussian notch filter.
Key Findings
1
An optical notch filter was demonstrated using a periodic microbent fiber Bragg grating formed with two copper-wire-wound slabs.
2
Bragg transmission loss in the transmission spectrum varies with both the modulation period and modulation amplitude.
3
Mechanical modulation of the grating period generates sideband peaks in the reflection spectrum, with more peaks appearing at higher modulation levels.
4
The proposed microbent-grating technique is reported to be highly stable and suitable for optical Gaussian notch filtering.
5
The spacing between peak wavelengths is controlled by the microbending period, adjustable through winding-wire diameter or fiber placement angle.
Research Object
periodic microbent fiber Bragg grating constructed with two copper-wire-wound slabs
Research Subject
optical notch-filter response, including mechanically induced sideband peaks, peak-wavelength spacing, and Bragg transmission loss as functions of microbending period and modulation amplitude
Publication Details
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2014-01-06
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