Open Access
Issue |
J. Eur. Opt. Soc.-Rapid Publ.
Volume 4, 2009
|
|
---|---|---|
Article Number | 09032 | |
Number of page(s) | 10 | |
DOI | https://doi.org/10.2971/jeos.2009.09032 | |
Published online | 19 June 2009 |
- E. A. J. Marcatili, “Bends in Optical Dielectric Guides” AT&T Tech. J. 48, 2103–2132 (1969). [Google Scholar]
- D. G. Rabus, Integrated Ring Resonators: The Compendium (Springer, Berlin, 2007). [Google Scholar]
- J. Heebner, R. Grover, and T. Irahim, Optical Microresonators: Theory, Fabbrication, and Applications (Springer, Berlin, 2007). [Google Scholar]
- S. Xiao, M. H. Khan, H. Shen, and M. Qi, “Multiple-channel silicon micro-resonator based filters for WDM applications” Opt. Express 15, 7489–7498 (2007). [NASA ADS] [CrossRef] [Google Scholar]
- B. Bortnik, Y.-C. Hung, H. Tazawa, B.-J. Seo, J. Luo, A. K.-Y. Jen, W. H. Steier, and H. R. Fetterman, “Electrooptic Polymer Ring Resonator Modulation up to 165 GHz” IEEE J. Sel. Top. Quant. 13, 104–110 (2007). [NASA ADS] [CrossRef] [Google Scholar]
- K. Suzuki, K. Takiguchi, and K. Hotate, “Monolithically Integrated Resonator Microoptic Gyro on Silica Planar Lightwave Circuit” J. Lightwave Technol. 18, 66-72 (2000). [NASA ADS] [CrossRef] [Google Scholar]
- C. Ciminelli, F. Peluso, and M. N. Armenise, A new integrated optical angular velocity sensor 93–100 (Proceedings SPIE, 5728, 2005). [Google Scholar]
- C. Ciminelli, F. Peluso, E. Armandillo, and M. N. Armenise, Modeling of a new integrated optical angular velocity sensor (Optronics Symposium (OPTRO), Paris, 8 - 12 May 2005). [Google Scholar]
- C. Ciminelli, Innovative photonic technologies for gyroscope systems (EOS Topical Meeting - Photonic Devices in Space, Paris, 18-19 October 2006). [Google Scholar]
- C. Ciminelli, C. E. Campanella, and M. N. Armenise, Design of passive ring resonators to be used for sensing applications 278–280 (Proc. of First Mediterranean Photonics Conference, 2008). [Google Scholar]
- C. Ciminelli, C. E. Campanella, and M. N. Armenise, “Optimized Design of Integrated Optical Angular Velocity Sensors based on a Passive Ring Resonator” J. Lightwave Technol. (2009). [Google Scholar]
- H. Ma, X. Zhang, Z. Jin, and C. Ding, “Waveguide-type optical passive ring resonator gyro using phase modulation spectroscopy technique” Opt. Eng. 45, 080506 (2006). [NASA ADS] [CrossRef] [Google Scholar]
- C. Vannahme, H. Suche, S. Reza, R. Ricken, V. Quiring, and W. Sohler, Integrated Optical Ti:LiNbO3 Ring Resonator for Rotation Rate Sensing WE1 (European Conference on Integrated Optics (ECIO), 2007). [Google Scholar]
- G. Li and K. A. Winick, Integrated optical ring resonators fabricated by silver ion exchange in glass 1-2 (Conference on Lasers and Electro-Optics (CLEO), 1, 2004). [Google Scholar]
- C. Ford, R. Ramberg, K. Johnson, W. Berglund, B. Ellerbusch, R. Schermer, and A. Gopinath, “Cavity Element Resonant Micro Optical Gyroscope” IEEE Aero. El. Sys. Mag. 15, 33–36 (2000). [Google Scholar]
- H. Hsiao and K. A. Winick, “ Planar glass waveguide ring resonators with gain” Opt. Express 15, 17783–17797 (2007). [NASA ADS] [CrossRef] [Google Scholar]
- C.-Y. Chao, W. Fung, and L. J. Guo, “Polymer Microring Resonators for Biochemical Sensing Applications” IEEE J. Sel. Topics in Quantum Electron. 12, 134–142 (2006). [NASA ADS] [CrossRef] [Google Scholar]
- A. Yalçin, K. C. Popat, J. C. Aldridge, T. A. Desai, J. Hryniewicz, N. Chbouki, B. E. Little, O. King, V. Van, S. Chu, D. Gill, M. Anthes-Washburn, M. S. Unlu, and B. B. Goldberg, “Optical sensing of biomelecules using microring resonators” IEEE J. Sel. Top. Quant. 12, 148–155 (2006). [CrossRef] [Google Scholar]
- A. Ksendzov and Y. Lin, “Integrated optics ring-resonator sensors for protein detection” Opt. Lett. 30, 3344–3346 (2005). [NASA ADS] [CrossRef] [Google Scholar]
- E. Krioukov, D. J. W. Klunder, A. Driessen, J. Greve, and C. Otto, “Sensor based on an integrated optical cavity” Opt. Lett. 27, 512–514 (2002). [NASA ADS] [CrossRef] [Google Scholar]
- B. Bhola and W. H. Steier, “A Novel Optical Microring Resonator Accelerometer” IEEE Sens. J. 7, 1759–1766 (2007). [CrossRef] [Google Scholar]
- I. Kiyat, C. Kocabas, and A. Aydinli, “Integrated micro ring resonator displacement sensor for scanning probe Microscopies” J. Micromech. Microeng. 14, 374–381 (2004). [CrossRef] [Google Scholar]
- J. Haavisto and G. A. Pajer “Resonance effects in low-loss ring waveguides” Opt. Lett. 12, 510–512 (1980). [NASA ADS] [CrossRef] [Google Scholar]
- R. G. Walker and C. D. W. Wilkinson, “Integrated optical ring resonators made by silver ion-exchange in glass” Appl. Optics 22, 1029–1035 (1983). [NASA ADS] [CrossRef] [Google Scholar]
- R. Adar, M. R. Serbin, and V. Mizrahi, “Less than 1 dB Per Meter Propagation Loss of Silica Waveguides Measured Using a Ring Resonator” J. Lightwave Technol. 12, 1369–1372 (1994). [NASA ADS] [CrossRef] [Google Scholar]
- C. Ciminelli, F. Dell’Olio, C. E. Campanella, V. M. N. Passaro, and M. N. Armenise, “Integrated Optical Ring Resonators: Modelling and Technologies” in Progress in Optical Fibers, P. S. Emersone, ed., (Nova Science Publishers, New York, 2009). [Google Scholar]
- S. Xiao, M. H. Khan, H. Shen, and M. Qi, “Silicon-on-Insulator Microring Add-Drop Filters With Free Spectral Ranges Over 30 nm” J. Lightwave Technol. 26, 228–236 (2008). [CrossRef] [Google Scholar]
- D. G. Rabus, M. Hamacher, U. Troppenz, and H. Heidrich, “High- Q Channel-Dropping Filters Using Ring Resonators With Integrated SOAs” IEEE Photonic. Tech. L. 14, 1442–1444 (2002). [CrossRef] [Google Scholar]
- V. M. Menon, W. Tong, and S. R. Forrest, “Control of Quality Factor and Critical Coupling in Microring Resonators Through Integration of a Semiconductor Optical Amplifier” IEEE Photonic. Tech. L. 16, 1343–1345 (2004). [CrossRef] [Google Scholar]
- S. J. Choi, Z. Peng, Q. Yang, E. H. Hwang, and P. D. Dapkus, “A High- Q Wavelength Filter Based on Buried Heterostructure Ring Resonators Integrated With a Semiconductor Optical Amplifier” IEEE Photonic. Tech. L. 17, 1210–2103 (2005). [Google Scholar]
- D. Rafizadeh, J. P. Zhang, R. C. Tiberio, and S. T. Ho, “Propagation Loss Measurements in Semiconductor Microcavity Ring and Disk Resonators” J. Lightwave Technol. 16, 1308–1314 (1998). [CrossRef] [Google Scholar]
- P. P. Absil, Microring resonators for wavelength division multiplexing and integrated photonics applications (Ph. D. thesis, University of Maryland, 2000). [Google Scholar]
- D. G. Rabus, and M. Hamacher, “MMI-Coupled Ring Resonators in GaInAsP–InP” IEEE Photonic. Tech. L. 13, 812–814 (2001). [CrossRef] [Google Scholar]
- R. Grover, Indium Phosphide Based Optical Micro-Ring Resonators (Ph. D. thesis, University of Maryland, 2003). [Google Scholar]
- S. J. Choi, K. Djordjev, Z. Peng, Q. Yang, S. J. Choi, and P. D. Dapkus, “Laterally Coupled Buried Heterostructure High-Q Ring Resonators” IEEE Photonic. Tech. L. 16, 2266-2268 (2004). [CrossRef] [Google Scholar]
- R. Grover, P. P. Absil, T. A. Ibrahim, and P.-T. Ho, “III-V Semiconductor Optical Micro-Ring Resonator” 110–129 (Proc. of 39th International School of Quantum Electronics, 2003). [Google Scholar]
- F. F. Soares, Photonic integrated true-time-delay beamformers in InP technology (Ph. D. thesis, Technische Universiteit Eindhoven, paragraph 2.3, 2006). [Google Scholar]
- Fimmwave 4.6, Photon Design (2007). [Google Scholar]
- M. Galarza, J. Moreno, M. Lopez-Amo, I. Christiaens, D. Van Thourhout, and R. Baets, “Simple low-loss waveguide bends using ARROW effect” Appl. Phys. B-Lasers O. 80, 745–748 (2005). [NASA ADS] [CrossRef] [Google Scholar]
- R. Halir, A. Ortega-Monux, J. G. Wangumert-Perez, I. Molina-Fernandez, and P. Cheben, “Fabrication Tolerance Analysis of Bent Single-Mode Rib Waveguides on SOI” Opt. Quant. Electron. 38, 921–932 (2007). [CrossRef] [Google Scholar]
- K. Kakihara, N. Kono, K. Saitoh, and M. Koshiba, “Full-vectorial finite element method in a cylindrical coordinate system for loss analysis of photonic wire bends” Opt. Express 14, 11128–11141 (2006). [NASA ADS] [CrossRef] [Google Scholar]
- C. Ciminelli, V. M. N. Passaro, F. DellâĂŹOlio, M. N. Armenise, “Three-dimensional modelling of scattering loss in InGaAsP/InP and Silica-on-Silicon bent waveguides” J. Europ. Opt. Soc. Rap. Public. 4, 09015 (2009). [CrossRef] [Google Scholar]
- OptiBPM 9, Optiwave (2007). [Google Scholar]
- A. Yariv, “Universal relations for coupling of optical power between. microresonators and dielectric waveguides” Electron. Lett. 36, 321–322 (2000). [NASA ADS] [CrossRef] [Google Scholar]
Current usage metrics show cumulative count of Article Views (full-text article views including HTML views, PDF and ePub downloads, according to the available data) and Abstracts Views on Vision4Press platform.
Data correspond to usage on the plateform after 2015. The current usage metrics is available 48-96 hours after online publication and is updated daily on week days.
Initial download of the metrics may take a while.