DocumentCode :
45910
Title :
Electrically Tunable Liquid-Crystal-Core Optical Channel Waveguide
Author :
Tzyy-Jiann Wang ; Chi-Kai Chaung ; Wan-Jing Li ; Tien-Jung Chen ; Bo-Yu Chen
Author_Institution :
Inst. of Electro-Opt. Eng., Nat. Taipei Univ. of Technol., Taipei, Taiwan
Volume :
31
Issue :
22
fYear :
2013
fDate :
Nov.15, 2013
Firstpage :
3570
Lastpage :
3574
Abstract :
We report electrically tunable liquid-crystal-core channel waveguides, in which the lightwave guiding can be tuned among cut-off, single-mode, and multi-mode. Ultrasonic-assisted chemical etching is used to produce semicircular grooves on the optical glass substrate for encapsulating liquid crystal as the waveguide core. The liquid-crystal-core waveguide loss is reduced to the lowest value 1.3 dB/cm up to date, which is attributed to the smooth and uniform groove surface. The extinction ratio is >20 dB for optical switching application. The LC director distributions under various voltages are calculated by finite element method and the characteristics of guided modes are simulated by the full-vectorial mode solver considering the full anisotropy. The simulated waveguide characteristics are well consistent with the experimental results. The proposed liquid-crystal-core waveguide owns the features: simple and low-cost fabrication process, arbitrary device pattern, and integration with silicon platform.
Keywords :
electro-optical devices; extinction coefficients; finite element analysis; integrated optics; liquid crystal devices; optical fabrication; optical glass; optical losses; optical switches; optical waveguides; LC director distributions; arbitrary device pattern; electrically tunable liquid-crystal-core optical channel waveguide; extinction ratio; finite element method; full-vectorial mode solver; guided modes; integrated silicon platform; lightwave guiding; low-cost fabrication process; optical glass substrate; optical switching; semicircular grooves; ultrasonic-assisted chemical etching; waveguide loss; Etching; Glass; Optical device fabrication; Optical polarization; Optical surface waves; Optical waveguides; Substrates; Electro-optic devices; integrated-optic devices; liquid-crystal devices;
fLanguage :
English
Journal_Title :
Lightwave Technology, Journal of
Publisher :
ieee
ISSN :
0733-8724
Type :
jour
DOI :
10.1109/JLT.2013.2285250
Filename :
6626632
Link To Document :
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