DocumentCode :
1416587
Title :
New Scheme of Double-Variable-Curvature Microlens for Efficient Coupling High-Power Lasers to Single-Mode Fibers
Author :
Liu, Yu-Da ; Tsai, Ying-Chien ; Lu, Yu-Kuan ; Wang, Li-Jin ; Hsieh, Ming-Chun ; Yeh, Szu-Ming ; Cheng, Wood-Hi
Author_Institution :
Dept. of Photonics, Nat. Sun Yat-sen Univ., Kaohsiung, Taiwan
Volume :
29
Issue :
6
fYear :
2011
fDate :
3/15/2011 12:00:00 AM
Firstpage :
898
Lastpage :
904
Abstract :
A new scheme of a double-variable-curvature microlens (DVCM) employing a single-step grinding technique with fully automated fabrication for efficient coupling between high-power 980-nm laser diodes and single-mode fibers is proposed and demonstrated. The grinded fiber endface exhibited a double-variable curvature in the major axis, and was clearly observed for both major and minor axes after slight fusion polish. The perfect aspherical shape of the DVCM results in less grinding offset of 0.2 μm and better curvature radii control that leads to high average coupling efficiency of 83%. This clearly indicates that the performance of the DVCM can achieve high average coupling efficiency better than any other grinding techniques to form asymmetric microlenses. The versatility in double-variable-curvature design, fully automated fabrication, and the excellent performance of aspherical microlens makes the proposed DVCM extremely attractive for use in many lightwave interconnection applications.
Keywords :
aspherical optics; microlenses; optical fibre couplers; optical fibre fabrication; optical interconnections; semiconductor lasers; aspherical microlens; asymmetric microlenses; automated fabrication; coupling; curvature radii control; double-variable-curvature microlens; high-power lasers; laser diodes; lightwave interconnection; single-mode fibers; single-step grinding; wavelength 980 nm; Couplings; Fabrication; Fiber lasers; Laser modes; Lenses; Microoptics; Optical fiber theory; Coupling efficiency; double-variable-curvature microlens (DVCM); interconnection;
fLanguage :
English
Journal_Title :
Lightwave Technology, Journal of
Publisher :
ieee
ISSN :
0733-8724
Type :
jour
DOI :
10.1109/JLT.2010.2103394
Filename :
5678609
Link To Document :
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