DocumentCode :
795954
Title :
Thermooptical switches using coated microsphere resonators
Author :
Tapalian, H.C. ; Laine, J.-P. ; Lane, P.A.
Author_Institution :
Charles Stark Draper Lab. Inc., Cambridge, MA, USA
Volume :
14
Issue :
8
fYear :
2002
Firstpage :
1118
Lastpage :
1120
Abstract :
We report the development of a novel optical switching technique consisting of a silica microsphere optical resonator coated by a conjugated polymer. A 250-μm diameter silica microsphere was coated by dipping into a toluene solution of poly(2,5-dioctyloxy-1,4-phenylenevinylene). The resonator properties were characterized by evanescently coupling 1.55-μm light propagating along a stripline-pedestal antiresonant reflecting optical waveguide into optical whispering gallery modes (WGMs) of the microsphere. WGM resonant frequency shifts as large as 3.2 GHz were observed when 405-nm pump light with a power density of /spl sim/104 mW/cm2 was incident on the microsphere. The time constant of the observed frequency shifts is approximately 0.165 s, leading us to attribute the frequency shift to thermooptic effects. As microsphere resonators with WGM linewidths less than 2 MHz (corresponding to cavity Q>10/sup 8/) can be easily fabricated, initial measurements indicate that such a system is capable of thermooptically switching the WGM resonant frequency at speeds on the order of 100 ms.
Keywords :
integrated optics; micro-optics; optical polymers; optical resonators; optical switches; silicon compounds; thermo-optical effects; 1.55 micron; 100 ms; 250 micron; 405 nm; SiO/sub 2/; SiO/sub 2/ microsphere optical resonator; WGM resonant frequency shifts; cavity Q; conjugated polymer coating; dipping coating; evanescent coupling; frequency shift time constant; microoptical cavity; optical switching technique; optical whispering gallery modes; poly(2,5-dioctyloxy-1,4-phenylenevinylene); resonator properties; stripline-pedestal antiresonant reflecting optical waveguide; switching speeds; thermooptical switches; toluene solution; Optical coupling; Optical polymers; Optical pumping; Optical resonators; Optical surface waves; Optical switches; Optical waveguides; Polymer films; Resonant frequency; Silicon compounds;
fLanguage :
English
Journal_Title :
Photonics Technology Letters, IEEE
Publisher :
ieee
ISSN :
1041-1135
Type :
jour
DOI :
10.1109/LPT.2002.1021988
Filename :
1021988
Link To Document :
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