DocumentCode :
108054
Title :
Modeling and Characterization of a Vernier Latching MEMS Variable Optical Attenuator
Author :
Unamuno, Anartz ; Blue, Robert ; Uttamchandani, Deepak
Author_Institution :
Centre for Microsyst. & Photonics, Univ. of Strathclyde, Glasgow, UK
Volume :
22
Issue :
5
fYear :
2013
fDate :
Oct. 2013
Firstpage :
1229
Lastpage :
1241
Abstract :
We report on the modeling and testing of a Vernier latched MEMS variable optical attenuator (VOA) which uses chevron electrothermal microactuators to control fiber-to-fiber optical power coupling. The use of microlatches has the advantage of holding the mechanical position of the fiber, and therefore the level of attenuation, with no electrical energy supplied except only to change the attenuation. Results of analytical electro-thermo-mechanical models of the device are obtained and compared with experimental test results, showing a good agreement. A step resolution of 0.5 μm for this multi-state latched device is achieved using a Vernier latch approach. This incremental step size is smaller than previously reported latched microactuators. The VOA demonstrated an attenuation range of over 47 dB and an insertion loss of 1 dB. The wavelength dependent loss across the optical communications C-band is 1.4 dB at 40 dB attenuation and the 10-90% transition time of the unlatched VOA is measured to be 1.7 ms.
Keywords :
flip-flops; micro-optomechanical devices; microactuators; optical attenuators; optical communication equipment; optical fibre communication; optical fibre losses; optical testing; MEMS VOA; Vernier latch method; Vernier latching MEMS variable optical attenuator; chevron electrothermal microactuators; electrothermomechanical models; fiber-to-fiber optical power coupling; insertion loss; mechanical position; microlatches; multistate latched device; optical attenuation; optical communication C-band; optical testing; transition time; wavelength dependent loss; Chevron microactuators; Variable optical attenuator; Vernier-latch; electro-thermal actuators; fiber-to-fiber coupling;
fLanguage :
English
Journal_Title :
Microelectromechanical Systems, Journal of
Publisher :
ieee
ISSN :
1057-7157
Type :
jour
DOI :
10.1109/JMEMS.2013.2262593
Filename :
6541949
Link To Document :
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