Overview of novel integrated optical ring resonator bio/chemical sensors

被引:55
作者
Fan, Xudong [1 ]
White, Ian M. [1 ]
Zhu, Hongying [1 ]
Suter, Jonathan D. [1 ]
Oveys, Hesam [1 ]
机构
[1] Univ Missouri, Biol Engn Dept, 1201 E Rollins St,240D Life Sci Ctr, Columbia, MO 65211 USA
来源
LASER RESONATORS AND BEAM CONTROL IX | 2007年 / 6452卷
关键词
whispering gallery modes; ring resonators; optical sensors; microfluidics; capillary electrophoresis; lab-on-a-chip; label-free detection; refractive index;
D O I
10.1117/12.712144
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
In parallel to a stand-alone microsphere resonator and a planar ring resonator on a wafer, the liquid core optical ring resonator (LCORR) is regarded as the third type of ring resonator that integrates microfluidics with state-of-the-art photonics. The LCORR employs a micro-sized glass capillary with a wall thickness of a few microns. The circular cross section of the capillary forms a ring resonator that supports the whispering gallery modes (WGMs), which has the evanescent field in the core, allowing for repetitive interaction with the analytes carried inside the capillary. Despite the small physical size of the LCORR and sub-nanoliter sensing volume, the effective interaction length can exceed 10 cm due to high Q-factor (10(6)), significantly improving the LCORR detection limit. The LCORR is a versatile system that exhibits excellent fluid handling capability inherent to capillaries and permits non-invasive and quantitative measurement at any location along the capillary. Furthermore, the LCORR uses the refractive index change as a transduction signal, which enables label-free detection. Therefore, the LCORR is a promising technology platform for future sensitive, miniaturized, lab-on-a-chip type sensors. In this paper, we will introduce the concept of the LCORR and present the theoretical analysis and the experimental results related to the LCORR sensor development.
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页数:20
相关论文
共 88 条
[41]   Planar optical waveguides for sensing applications [J].
Lavers, CR ;
Itoh, K ;
Wu, SC ;
Murabayashi, M ;
Mauchline, I ;
Stewart, G ;
Stout, T .
SENSORS AND ACTUATORS B-CHEMICAL, 2000, 69 (1-2) :85-95
[42]  
LECHUGA LM, 1995, SENSOR ACTUAT B-CHEM, P762
[43]   Mechanically tunable optofluidic distributed feedback dye laser [J].
Li, Zhenyu ;
Zhang, Zhaoyu ;
Scherer, Axel ;
Psaltis, Demetri .
OPTICS EXPRESS, 2006, 14 (22) :10494-10499
[44]   Integrating waveguide biosensor [J].
Ligler, FS ;
Breimer, M ;
Golden, JP ;
Nivens, DA ;
Dodson, JP ;
Green, TM ;
Haders, DP ;
Sadik, OA .
ANALYTICAL CHEMISTRY, 2002, 74 (03) :713-719
[45]  
Linde D. R, 2005, CRC Handbook of Chemistry and Physics, V86th
[46]   Antiresonant reflecting photonic crystal optical waveguides [J].
Litchinitser, NM ;
Abeeluck, AK ;
Headley, C ;
Eggleton, BJ .
OPTICS LETTERS, 2002, 27 (18) :1592-1594
[47]   Pedestal antiresonant reflecting waveguides for robust coupling to microsphere resonators and for microphotonic circuits [J].
Little, BE ;
Laine, JP ;
Lim, DR ;
Haus, HA ;
Kimerling, LC ;
Chu, ST .
OPTICS LETTERS, 2000, 25 (01) :73-75
[48]  
Longtin JP, 1998, MICROSCALE THERM ENG, V2, P261
[49]   Hollow infrared fibers fabricated by glass-drawing technique [J].
Matsuura, Y ;
Kasahara, R ;
Katagiri, T ;
Miyagi, M .
OPTICS EXPRESS, 2002, 10 (12) :488-492
[50]   High-Q whispering-gallery mode sensor in liquids [J].
Nadeau, JL ;
Iltchenko, VS ;
Kossakovski, D ;
Bearman, GH ;
Maleki, L .
LASER RESONATORS AND BEAM CONTROL V, 2002, 4629 :172-180