FUNDAMENTAL AREAS OF PHENOMENOLOGY(INCLUDING APPLICATIONS) |
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Enhancing the Robustness of the Microcavity Coupling System |
YAN Ying-Zhan1, JI Zhe 2, YAN Shu-Bin2**, LIU Jun2, XUE Chen-Yang2, ZHANG Wen-Dong1, XIONG Ji-Jun1**
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1Key Laboratory of Instrumentation Science and Dynamic Measurement, North University of China, Taiyuan 030051
2Science and Technology on Electronic Test and Measurement Laboratory, North University of China, Taiyuan 030051
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Cite this article: |
YAN Ying-Zhan, JI Zhe, YAN Shu-Bin et al 2011 Chin. Phys. Lett. 28 034208 |
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Abstract A novel method to enhance the robustness of the microcavity coupling system (MCS) is presented by encapsulating and solidifying the MCS with a low refractive index (RI) curable UV polymer. The encapsulating process is illustrated in detail for a typical microsphere with a radius of R about 240 µm. Three differences of the resonant characteristics before and after the package are observed and analyzed. The first two differences refer to the enhancement of the coupling strength and the shift of the resonant spectrum to the longer wavelength, which are both mainly because of the microsphere surrounding RI variation. Another difference is the quality factor (Q-factor) which decreases from 7.8×107 to 8.7×106 after the package due to the polymer absorption. Moreover, rotation testing experiments have been carried out to verify the robustness of the package MCS. Experimental results demonstrate that the packaged MCR has much better robust performance than the un-package sample. The enhancement of the robustness greatly promotes the microcavity research from fundamental investigations to application fields.
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Keywords:
42.25.Gy
42.60.Da
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Received: 05 October 2010
Published: 28 February 2011
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PACS: |
42.25.Gy
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(Edge and boundary effects; reflection and refraction)
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42.60.Da
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(Resonators, cavities, amplifiers, arrays, and rings)
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[1] Valhala K J 2003 Nature 424 839
[2] Cai M, Painter O and Valhala K J 2000 Phys. Rev. Lett. 85 74
[3] Redding B, Marchena E, Creazzo T, Shi S and Prather D W 2010 Opt. Lett. 35 998
[4] Armani D K, Kippenberg T J, Spillane S M and Valhala K J 2003 Nature 421 925
[5] Knight J C Cheung G, Jacques F and Birks T A 1997 Opt. Lett. 22 1129
[6] Walther C, Scalari G, Amanti M I, Beck M and Faist J 2010 Science 19 1495
[7] Vollmer F and Arnold S 2008 Nature Methods 5 591
[8] Kippenberg T J, Rokhsari H, Carmon T, Scherer A and Vahala K J 2005 Phys. Rev. Lett. 95 033901
[9] Dayan B, Parkins A S, Aoki T, Ostby E P, Vahala K J and Kimble H J 2008 Science 319 1062
[10] Del'Haye P, Arcizet O, Schliesser A, Holzwarth R and Kippenberg T J 2007 Nature 450 1214
[11] Matsko A B, Savchenkov A A, Ilchenko V S and Maleki L 2004 Opt. Commun. 233 107
[12] Sunada S and Harayama T 2007 Opt. Express 15 16245
[13] Scheuer J and Yariv A 2006 Phys. Rev. Lett. 96 053901
[14] Ciminelli C, Dell'Olio F, Campanella C E and Armenise M N 2010 Adv. Opt. Photon. 2 370
[15] Razzari L, Duchesne1 D, Ferrera M, R, Morandotti R, Chu S, Little B E and Moss D J 2010 Nature Photon. 4 41
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