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  4. Self-amplitude and self-phase modulation of the charcoal mode-locked erbium-doped fiber lasers
 
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Self-amplitude and self-phase modulation of the charcoal mode-locked erbium-doped fiber lasers

Journal
Optics Express
Journal Volume
21
Journal Issue
21
Pages
25184-25196
Date Issued
2013
Author(s)
Lin, Y.-H.
Lo, J.-Y.
Tseng, W.-H.
Wu, C.-I.
CHIH-I WU  
GONG-RU LIN  
DOI
10.1364/OE.21.025184
URI
https://scholars.lib.ntu.edu.tw/handle/123456789/500068
URL
https://www.scopus.com/inward/record.uri?eid=2-s2.0-84886382755&doi=10.1364%2fOE.21.025184&partnerID=40&md5=0ff62ff12f1d6d1af1a7689c2b1c3ad2
Abstract
With the intra-cavity nano-scale charcoal powder based saturable absorber, the 455-fs passive mode-locking of an L-band erbium-doped fiber laser (EDFL) is demonstrated. The size reduction of charcoal nano-particle is implemented with a simple imprinting-exfoliation-wiping method, which assists to increase the transmittance up to 0.91 with corresponding modulation depth of 26%. By detuning the power gain from 17 to 21 dB and cavity dispersion from -0.004 to -0.156 ps² of the EDFL, the shortening of mode-locked pulsewidth from picosecond to sub-picosecond by the transformation of the pulse forming mechanism from self-amplitude modulation (SAM) to the combining effect of self-phase modulation (SPM) and group delay dispersion (GDD) is observed. A narrower spectrum with 3-dB linewidth of 1.83-nm is in the SAM case, whereas the spectral linewidth broadens to 5.86 nm with significant Kelly sideband pair can be observed if the EDFL enters into the SPM regime. The mode-locking mechanism transferred from SAM to SPM/GDD dominates the pulse shortening procedure in the EDFL, whereas the intrinsic defects in charcoal nano-particle only affect the pulse formation at initial stage. The minor role of the saturable absorber played in the EDFL cavity with strongest SPM is observed.
Type
journal article

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