|
|
Efficient fiber-to-chip grating coupler for micrometric SOI rib waveguides |
Optics Express, Vol. 18, Issue 14, pp. 15189-15200 (2010)
http://dx.doi.org/10.1364/OE.18.015189
Acrobat PDF (2264 KB)
Abstract
Grating couplers are an efficient means for fiber to chip coupling, as they require no facet preparation and enable wafer scale testing. While grating couplers are commonly used in silicon wire waveguides, their application to micrometric silicon-on-insulator rib waveguides is complicated due to the presence of high-order Bloch modes. We study the Bloch modes behavior and their excitation determined by access waveguide design. The latter is implemented to enable single Bloch mode excitation. The use of a design process based on modal analysis is proposed. A grating coupler is proposed in silicon-on-insulator with 1.5µm thick silicon layer that achieves a coupling efficiency of 65.6% at 1.55µm. The structure, including interconnection waveguides, access waveguide and grating can be fabricated using a single lithography step.
© 2010 Optical Society of America
1. Introduction
R. Soref, “The past, present, and future of silicon photonics,” IEEE J. Sel. Top. Quantum Electron. 12(6), 1678–1687 (2006). [CrossRef]
P. Cheben, R. Soref, D. Lockwood, and G. Reed, “Silicon Photonics,” Adv. Opt. Technol. (2008) Article ID 510937, 2 pages, 2008. doi:10.1155/2008/510937 [CrossRef]
S. Janz, P. Dalacu, D. Delâge, A. Densmore, A. Lamontagne, B. Picard, M. Post, E. Schmid, J. Waldron, D. Xu, K.P. Yap, and W. Ye, “Microphotonic elements for integration on the silicon-on-insulator waveguide platform,” IEEE J. Sel. Top. Quantum Electron. 12(6), 1402–1415 (2006). [CrossRef]
A. Sure, T. Dillon, J. Murakowski, C. Lin, D. Pustai, and D. Prather, “Fabrication and characterization of three-dimensional silicon tapers,” Opt. Express 11(26), 3555–3561 (2002). [CrossRef]
V. Almeida, R. Panepucci, and M. Lipson, “Nanotaper for compact mode conversion,” Opt. Lett. 28(15), 1302–1304 (2003). [CrossRef] [PubMed]
P. Cheben, D. Xu, S. Janz, and A. Densmore, “Subwavelength waveguide grating for mode conversion and light coupling in integrated optics,” Opt. Express 14(11), 4695–4702 (2006). [CrossRef] [PubMed]
D. Taillaert, P. Bienstman, and R. Baets, “Compact efficient broadband grating coupler for silicon-on-insulator waveguides,” Opt. Lett. 29(23), 2749–2751 (2004). [CrossRef] [PubMed]
D. Taillaert, W. Bogaerts, P. Bienstman, T. Krauss, P. Van Daele, I. Moerman, S. Verstuyft, K. De Mesel, and R. Baets, “An out-of-plane grating coupler for efficient butt-coupling between compact planar waveguides and single-mode fibers,” IEEE J. Quantum Electron. 38(7), 949–955 (2002). [CrossRef]
G. Roelkens, D. Van Thourhout, and R. Baets, “High efficiency silicon-on-insulator grating coupler based on a poly-silicon overlay,” Opt. Express 14(24), 11622–11630 (2006). [CrossRef] [PubMed]
F. Van Laere, G. Roelkens, M. Ayre, J. Schrauwen, D. Taillaert, D. Van Thourhout, T. Krauss, and R. Baets, “Compact and highly efficient grating couplers between optical fiber and nanophotonic waveguides,” J. Light-wave Technol. 25(1), 151–156 (2007). [CrossRef]
G. Roelkens, D. Vermeulen, D. Van Thourhout, R. Baets, S. Brision, P. Lyan, P. Gautier, and J. Fedeli, “High efficiency diffractive grating couplers for interfacing a single mode optical fiber with a nanophotonic silicon-on-insulator waveguide circuit,” Appl. Phys. Lett. 92 131101 (2008). [CrossRef]
B. Schmid, A. Petrov, and M. Eich, “Optimized grating coupler with fully etched slots,” Opt. Express 17(13), 11066–11076 (2009). [PubMed]
D. Taillaert, P. Bienstman, and R. Baets, “Compact efficient broadband grating coupler for silicon-on-insulator waveguides,” Opt. Lett. 29(23), 2749–2751 (2004). [CrossRef] [PubMed]
D. Xu, P. Cheben, D. Dalacu, A. Delâge, S. Janz, B. Lamontagne, M. Picard, and W. Ye, “Eliminating the birefringence in silicon-on-insulator ridge waveguides by use of cladding stress,” Opt. Lett. 29(20), 2384–2386 (2004). [CrossRef] [PubMed]
W. Ye, D. Xu, S. Janz, P. Cheben, M. Picard, B. Lamontagne, and N. Tarr, “Birefringence control using stress engineering in silicon-on-insulator (SOI) waveguides,” J. Lightwave Technol. 23(3), 1308–1318 (2005). [CrossRef]
R. Halir, I. Molina-Fernández, A. Ortega-Moñux, J. Wangüemert-Pérez, D. Xu, P. Cheben, and S. Janz, “A design procedure for high-performance, rib-waveguide-based multimode interference couplers in silicon-on-insulator,” J. Lightwave Technol. 26(16), 2928–2936 (2008). [CrossRef]
P. Trinh, S. Yegnanarayanan, F. Coppinger, and B. Jalali, “Silicon-on-insulator (SOI) phased-array wavelength multi/demultiplexer with extremely low polarization sensitivity,” IEEE Photonics Technol. Lett. 9(7), 940–942 (1997). [CrossRef]
P. Cheben, J. Schmid, A. Delâge, A. Densmore, S. Janz, B. Lamontagne, J. Lapointe, E. Post, P. Waldron, and D. Xu, “A high-resolution silicon-on-insulator arrayed waveguide grating microspectrometer with submicrometer aperture waveguides,” Opt. Express 15(5), 2299–2306 (2007). [CrossRef] [PubMed]
K. Voigt, L. Zimmermann, G. Winzer, T. Mitze, J. Bruns, K. Petermann, B. Huttl, and C. Schubert, “Performance of 40-Gb/s DPSK demodulator in SOI-technology,” IEEE Photonics Technol. Lett. 20(8), 614–616 (2008). [CrossRef]
R. Soref, J. Schmidtchen, and K. Petermann, “Large single-mode rib waveguides in GeSi-Si and Si-on-SiO2 ,” IEEE J. Quantum Electron. 27(8), 1971–1974 (1991). [CrossRef]
- Standard fabrication process: Feature sizes should be larger than 0.5µm so that they can be realized with i-line stepper lithography.
- A single lithography and etch step to be used for the definition of the grating coupler, interconnecting waveguides and other photonic components, such as MMIs [24].
R. Halir, A. Ortega-Moñux, I. Molina-Fernández, J. Wangüemert-Pérez, P. Cheben, D. Xu, B. Lamontagne, and S. Janz, “Compact high performance multi-mode interference couplers in silicon-on-insulator,” IEEE Photonics Technol. Lett. 21(21), 1600–1602 (2009). [CrossRef]
2. Grating couplers
D. Taillaert, P. Bienstman, and R. Baets, “Compact efficient broadband grating coupler for silicon-on-insulator waveguides,” Opt. Lett. 29(23), 2749–2751 (2004). [CrossRef] [PubMed]
D. Taillaert, P. Bienstman, and R. Baets, “Compact efficient broadband grating coupler for silicon-on-insulator waveguides,” Opt. Lett. 29(23), 2749–2751 (2004). [CrossRef] [PubMed]
R. Halir, P. Cheben, S. Janz, D. Xu, I. Molina-Fernández, and J. Wangüemert-Pérez, “Waveguide grating coupler with subwavelength microstructures,” Opt. Lett. 34(9), 1408–1410 (2009). [CrossRef] [PubMed]
K. Hill and G. Meltz, “Fiber Bragg grating technology fundamentals and overview,” J. Lightwave Technol. 15(8), 1263–1276 (1997). [CrossRef]
3. Bloch modes
B. Schmid, A. Petrov, and M. Eich, “Optimized grating coupler with fully etched slots,” Opt. Express 17(13), 11066–11076 (2009). [PubMed]
S. Helfert and R. Pregla, “Efficient analysis of periodic structures,” J. Lightwave Technol. 16(9), 1694–1702 (1998). [CrossRef]
4. Single mode excitation
R. Soref, J. Schmidtchen, and K. Petermann, “Large single-mode rib waveguides in GeSi-Si and Si-on-SiO2 ,” IEEE J. Quantum Electron. 27(8), 1971–1974 (1991). [CrossRef]
- Condition (8) is satisfied only for a specific height of the access waveguide.
- The optimum value for taw depends on the etch depth as
M. Schnarrenberger, L. Zimmermann, T. Mitze, K. Voigt, J. Bruns, and K. Petermann, “Low loss star coupler concept for AWGs in rib waveguide technology,” IEEE Photonics Technol. Lett. 18(23), 2469–2471 (2006). [CrossRef]
V. Almeida, R. Panepucci, and M. Lipson, “Nanotaper for compact mode conversion,” Opt. Lett. 28(15), 1302–1304 (2003). [CrossRef] [PubMed]
5. Grating design
S. Helfert and R. Pregla, “Efficient analysis of periodic structures,” J. Lightwave Technol. 16(9), 1694–1702 (1998). [CrossRef]
Q. Cao, P. Lalanne, and J. Hugonin, “Stable and efficient Bloch-mode computational method for one-dimensional grating waveguides,” J. Opt. Soc. Am. A 19(2), 335–338 (2002). [CrossRef]
R. Soref, J. Schmidtchen, and K. Petermann, “Large single-mode rib waveguides in GeSi-Si and Si-on-SiO2 ,” IEEE J. Quantum Electron. 27(8), 1971–1974 (1991). [CrossRef]
6. Calculated results for optimal grating design
F. Van Laere, G. Roelkens, M. Ayre, J. Schrauwen, D. Taillaert, D. Van Thourhout, T. Krauss, and R. Baets, “Compact and highly efficient grating couplers between optical fiber and nanophotonic waveguides,” J. Light-wave Technol. 25(1), 151–156 (2007). [CrossRef]
G. Roelkens, D. Vermeulen, D. Van Thourhout, R. Baets, S. Brision, P. Lyan, P. Gautier, and J. Fedeli, “High efficiency diffractive grating couplers for interfacing a single mode optical fiber with a nanophotonic silicon-on-insulator waveguide circuit,” Appl. Phys. Lett. 92 131101 (2008). [CrossRef]
7. Conclusion
Appendices
Appendix A
A. Ortega-Moñux, I. Molina-Fernández, and J. Wangüemert-Pérez, “3D-Scalar Fourier eigenvector expansion method (Fourier-EEM) for analyzing optical waveguide discontinuities,” Opt. Quantum Electron. 37(1), 213–228 (2005). [CrossRef]
Appendix B
- Field distribution along the y-axis has to ensure single-mode excitation of the grating region.Fig. 8. (a) Interconnection rib waveguide and fundamental mode (b) Objective field (c) Rib waveguide at the end of inverse taper and fundamental mode.Fig. 9. (a) Inner product for objective field (Eobj ) and excitation field (Erib ) for inversely tapered rib of width xend (b) Loss of the inverse taper as a function of taper length Ltaper (c) Alignment tolerance between the grating coupler and the inverse taper.
- Field distribution along the x-axis has to maximize the overlap with a near-Gaussian field of the optical fiber mode.
Acknowledgments
References and links
R. Soref, “The past, present, and future of silicon photonics,” IEEE J. Sel. Top. Quantum Electron. 12(6), 1678–1687 (2006). [CrossRef] | |
L. Pavesi. and D. J. Lockwood, eds., Silicon Photonics (Springer, Berlin, 2004) | |
P. Cheben, R. Soref, D. Lockwood, and G. Reed, “Silicon Photonics,” Adv. Opt. Technol. (2008) Article ID 510937, 2 pages, 2008. doi:10.1155/2008/510937 [CrossRef] | |
S. Janz, P. Dalacu, D. Delâge, A. Densmore, A. Lamontagne, B. Picard, M. Post, E. Schmid, J. Waldron, D. Xu, K.P. Yap, and W. Ye, “Microphotonic elements for integration on the silicon-on-insulator waveguide platform,” IEEE J. Sel. Top. Quantum Electron. 12(6), 1402–1415 (2006). [CrossRef] | |
A. Sure, T. Dillon, J. Murakowski, C. Lin, D. Pustai, and D. Prather, “Fabrication and characterization of three-dimensional silicon tapers,” Opt. Express 11(26), 3555–3561 (2002). [CrossRef] | |
V. Almeida, R. Panepucci, and M. Lipson, “Nanotaper for compact mode conversion,” Opt. Lett. 28(15), 1302–1304 (2003). [CrossRef] [PubMed] | |
P. Cheben, D. Xu, S. Janz, and A. Densmore, “Subwavelength waveguide grating for mode conversion and light coupling in integrated optics,” Opt. Express 14(11), 4695–4702 (2006). [CrossRef] [PubMed] | |
A. Delâge, S. Janz, D. Xu, D. Dalacu, B. Lamontagne, and A. Bogdanov, “Graded-index coupler for microphotonic SOI waveguides” in Proc. of SPIE Photonics North 2004: Optical Components and Devices, vol. 5577, pp. 204–212, 2004. | |
D. Taillaert, P. Bienstman, and R. Baets, “Compact efficient broadband grating coupler for silicon-on-insulator waveguides,” Opt. Lett. 29(23), 2749–2751 (2004). [CrossRef] [PubMed] | |
D. Taillaert, W. Bogaerts, P. Bienstman, T. Krauss, P. Van Daele, I. Moerman, S. Verstuyft, K. De Mesel, and R. Baets, “An out-of-plane grating coupler for efficient butt-coupling between compact planar waveguides and single-mode fibers,” IEEE J. Quantum Electron. 38(7), 949–955 (2002). [CrossRef] | |
G. Roelkens, D. Van Thourhout, and R. Baets, “High efficiency silicon-on-insulator grating coupler based on a poly-silicon overlay,” Opt. Express 14(24), 11622–11630 (2006). [CrossRef] [PubMed] | |
F. Van Laere, G. Roelkens, M. Ayre, J. Schrauwen, D. Taillaert, D. Van Thourhout, T. Krauss, and R. Baets, “Compact and highly efficient grating couplers between optical fiber and nanophotonic waveguides,” J. Light-wave Technol. 25(1), 151–156 (2007). [CrossRef] | |
P. Sanchis, J. Blasco, and J. Marti, “Study of high efficiency grating couplers for silicon-based horizontal slot waveguides,” IEEE Photonics Technol. Lett. 20(12), 985–987 (2008). | |
G. Roelkens, D. Vermeulen, D. Van Thourhout, R. Baets, S. Brision, P. Lyan, P. Gautier, and J. Fedeli, “High efficiency diffractive grating couplers for interfacing a single mode optical fiber with a nanophotonic silicon-on-insulator waveguide circuit,” Appl. Phys. Lett. 92 131101 (2008). [CrossRef] | |
B. Schmid, A. Petrov, and M. Eich, “Optimized grating coupler with fully etched slots,” Opt. Express 17(13), 11066–11076 (2009). [PubMed] | |
D. Xu, P. Cheben, D. Dalacu, A. Delâge, S. Janz, B. Lamontagne, M. Picard, and W. Ye, “Eliminating the birefringence in silicon-on-insulator ridge waveguides by use of cladding stress,” Opt. Lett. 29(20), 2384–2386 (2004). [CrossRef] [PubMed] | |
W. Ye, D. Xu, S. Janz, P. Cheben, M. Picard, B. Lamontagne, and N. Tarr, “Birefringence control using stress engineering in silicon-on-insulator (SOI) waveguides,” J. Lightwave Technol. 23(3), 1308–1318 (2005). [CrossRef] | |
R. Halir, I. Molina-Fernández, A. Ortega-Moñux, J. Wangüemert-Pérez, D. Xu, P. Cheben, and S. Janz, “A design procedure for high-performance, rib-waveguide-based multimode interference couplers in silicon-on-insulator,” J. Lightwave Technol. 26(16), 2928–2936 (2008). [CrossRef] | |
P. Trinh, S. Yegnanarayanan, F. Coppinger, and B. Jalali, “Silicon-on-insulator (SOI) phased-array wavelength multi/demultiplexer with extremely low polarization sensitivity,” IEEE Photonics Technol. Lett. 9(7), 940–942 (1997). [CrossRef] | |
P. Cheben, J. Schmid, A. Delâge, A. Densmore, S. Janz, B. Lamontagne, J. Lapointe, E. Post, P. Waldron, and D. Xu, “A high-resolution silicon-on-insulator arrayed waveguide grating microspectrometer with submicrometer aperture waveguides,” Opt. Express 15(5), 2299–2306 (2007). [CrossRef] [PubMed] | |
P. Cheben, A. Delâge, S. Janz, and D. Xu, Echelle gratings and arrayed waveguide gratings for WDM and spectral analysis in Advances in Information Optics and Photonics , A.T. Friberg and R. Dandliker, eds. (SPIE Press, Billingham, Washington, 2008), pp. 599–632. | |
K. Voigt, L. Zimmermann, G. Winzer, T. Mitze, J. Bruns, K. Petermann, B. Huttl, and C. Schubert, “Performance of 40-Gb/s DPSK demodulator in SOI-technology,” IEEE Photonics Technol. Lett. 20(8), 614–616 (2008). [CrossRef] | |
R. Soref, J. Schmidtchen, and K. Petermann, “Large single-mode rib waveguides in GeSi-Si and Si-on-SiO2 ,” IEEE J. Quantum Electron. 27(8), 1971–1974 (1991). [CrossRef] | |
R. Halir, A. Ortega-Moñux, I. Molina-Fernández, J. Wangüemert-Pérez, P. Cheben, D. Xu, B. Lamontagne, and S. Janz, “Compact high performance multi-mode interference couplers in silicon-on-insulator,” IEEE Photonics Technol. Lett. 21(21), 1600–1602 (2009). [CrossRef] | |
R. Halir, P. Cheben, S. Janz, D. Xu, I. Molina-Fernández, and J. Wangüemert-Pérez, “Waveguide grating coupler with subwavelength microstructures,” Opt. Lett. 34(9), 1408–1410 (2009). [CrossRef] [PubMed] | |
K. Hill and G. Meltz, “Fiber Bragg grating technology fundamentals and overview,” J. Lightwave Technol. 15(8), 1263–1276 (1997). [CrossRef] | |
S. Helfert and R. Pregla, “Efficient analysis of periodic structures,” J. Lightwave Technol. 16(9), 1694–1702 (1998). [CrossRef] | |
T. Tamir and S. Peng, “Analysis and design of grating couplers,” Appl. Phys. A-Mater. 14(3), 235–254 (1977). | |
M. Schnarrenberger, L. Zimmermann, T. Mitze, K. Voigt, J. Bruns, and K. Petermann, “Low loss star coupler concept for AWGs in rib waveguide technology,” IEEE Photonics Technol. Lett. 18(23), 2469–2471 (2006). [CrossRef] | |
Q. Cao, P. Lalanne, and J. Hugonin, “Stable and efficient Bloch-mode computational method for one-dimensional grating waveguides,” J. Opt. Soc. Am. A 19(2), 335–338 (2002). [CrossRef] | |
L. Zavargo-Peche, C. A. Alonso-Ramos, A. Ortega-Moñux, R. Halir, J. G. Wangüemert-Pérez, and I. Molina-Fernández, “A tool for automatic grating design,” in XVIII International Workshop Optical Waveguide Theory and Numerical Modeling (OWTNM 2009), 2009, p. 45. | |
A. Ortega-Moñux, I. Molina-Fernández, and J. Wangüemert-Pérez, “3D-Scalar Fourier eigenvector expansion method (Fourier-EEM) for analyzing optical waveguide discontinuities,” Opt. Quantum Electron. 37(1), 213–228 (2005). [CrossRef] |
OCIS Codes
(230.1950) Optical devices : Diffraction gratings
(230.3120) Optical devices : Integrated optics devices
(230.7390) Optical devices : Waveguides, planar
ToC Category:
Optical Devices
History
Original Manuscript: April 1, 2010
Revised Manuscript: May 16, 2010
Manuscript Accepted: May 19, 2010
Published: July 1, 2010
Citation
C. Alonso-Ramos, Alejandro Ortega-Moñux, I. Molina-Fernández, P. Cheben, L. Zavargo-Peche, and R. Halir, "Efficient fiber-to-chip grating coupler for micrometric SOI rib waveguides," Opt. Express 18, 15189-15200 (2010)
http://www.opticsinfobase.org/oe/abstract.cfm?URI=oe-18-14-15189
Sort: Year | Journal | Reset
References
- R. Soref, "The past, present, and future of silicon photonics," IEEE J. Sel.Top Quantum Electron 12(6), 1678-1687 (2006). [CrossRef]
- L. Pavesi and D. J. Lockwood, eds., Silicon Photonics (Springer, Berlin, 2004)
- P. Cheben, R. Soref, D. Lockwood, and G. Reed, "Silicon Photonics," Adv. Opt. Technol. (2008) Article ID 510937, 2 pages, 2008. doi:10.1155/2008/510937 [CrossRef]
- S. Janz, P. Dalacu, D. Delâge, A. Densmore, A. Lamontagne, B. Picard, M. Post, E. Schmid, J. Waldron, D. Xu, K. P. Yap, and W. Ye, "Microphotonic elements for integration on the silicon-on-insulator waveguide platform," IEEE J. Sel.Top Quantum Electron 12(6), 1402-1415 (2006). [CrossRef]
- A. Sure, T. Dillon, J. Murakowski, C. Lin, D. Pustai, and D. Prather, "Fabrication and characterization of threedimensional silicon tapers," Opt. Express 11(26), 3555-3561 (2002). [CrossRef]
- V. Almeida, R. Panepucci, and M. Lipson, "Nanotaper for compact mode conversion," Opt. Lett. 28(15), 1302-1304 (2003). [CrossRef] [PubMed]
- P. Cheben, D. Xu, S. Janz, and A. Densmore, "Subwavelength waveguide grating for mode conversion and light coupling in integrated optics," Opt. Express 14(11), 4695-4702 (2006). [CrossRef] [PubMed]
- A . Delâge, S . Janz, D . Xu, D . Dalacu, B . Lamontagne, and A . Bogdanov, "Graded-index coupler for microphotonic SOI waveguides," Proc. SPIE 5577, 204-212 (2004).
- D. Taillaert, P. Bienstman, and R. Baets, "Compact efficient broadband grating coupler for silicon-on-insulator waveguides," Opt. Lett. 29(23), 2749-2751 (2004). [CrossRef] [PubMed]
- D. Taillaert, W. Bogaerts, P. Bienstman, T. Krauss, P. Van Daele, I. Moerman, S. Verstuyft, K. De Mesel, and R. Baets, "An out-of-plane grating coupler for efficient butt-coupling between compact planar waveguides and single-mode fibers," IEEE J. Sel.Top Quantum Electron. 38(7), 949-955 (2002). [CrossRef]
- G. Roelkens, D. Van Thourhout, and R. Baets, "High efficiency silicon-on-insulator grating coupler based on a poly-silicon overlay," Opt. Express 14(24), 11622-11630 (2006). [CrossRef] [PubMed]
- F. Van Laere, G. Roelkens, M. Ayre, J. Schrauwen, D. Taillaert, D. Van Thourhout, T. Krauss, and R. Baets, "Compact and highly efficient grating couplers between optical fiber and nanophotonic waveguides," J. Lightwave Technol. 25(1), 151-156 (2007). [CrossRef]
- P. Sanchis, J. Blasco, and J. Marti, "Study of high efficiency grating couplers for silicon-based horizontal slot waveguides," IEEE Photon. Technol. Lett. 20(12), 985-987 (2008).
- G. Roelkens, D. Vermeulen, D. Van Thourhout, R. Baets, S. Brision, P. Lyan, P. Gautier, and J. Fedeli, "High efficiency diffractive grating couplers for interfacing a single mode optical fiber with a nanophotonic silicon-oninsulator waveguide circuit," Appl. Phys. Lett. 92,131101 (2008). [CrossRef]
- B. Schmid, A. Petrov, and M. Eich, "Optimized grating coupler with fully etched slots," Opt. Express 17(13), 11066-11076 (2009). [PubMed]
- D. Xu, P. Cheben, D. Dalacu, A. Delâge, S. Janz, B. Lamontagne, M. Picard, and W. Ye, "Eliminating the birefringence in silicon-on-insulator ridge waveguides by use of cladding stress," Opt. Lett. 29(20), 2384-2386 (2004). [CrossRef] [PubMed]
- W. Ye, D. Xu, S. Janz, P. Cheben, M. Picard, B. Lamontagne, and N. Tarr, "Birefringence control using stress engineering in silicon-on-insulator (SOI) waveguides," J. Lightwave Technol. 23(3), 1308-1318 (2005). [CrossRef]
- R. Halir, I. Molina-Fernández, A. Ortega-Moñux, J.Wangüemert-P’erez, D. Xu, P. Cheben, and S. Janz, "A design procedure for high-performance, rib-waveguide-based multimode interference couplers in silicon-on-insulator," J. Lightwave Technol. 26(16), 2928-2936 (2008). [CrossRef]
- P. Trinh, S. Yegnanarayanan, F. Coppinger, and B. Jalali, "Silicon-on-insulator (SOI) phased-array wavelength multi/demultiplexer with extremely low polarization sensitivity," IEEE Photonics Technol. Lett. 9(7), 940-942 (1997). [CrossRef]
- P. Cheben, J. Schmid, A. Delâge, A. Densmore, S. Janz, B. Lamontagne, J. Lapointe, E. Post, P. Waldron, and D. Xu, "A high-resolution silicon-on-insulator arrayed waveguide grating microspectrometer with submicrometer aperture waveguides," Opt. Express 15(5), 2299-2306 (2007). [CrossRef] [PubMed]
- P. Cheben, A. Delâge, S. Janz, and D. Xu, Echelle gratings and arrayed waveguide gratings for WDM and spectral analysis in Advances in Information Optics and Photonics, A. T. Friberg and R. Dandliker, eds., (SPIE Press, Billingham, Washington, 2008), pp. 599-632.
- K. Voigt, L. Zimmermann, G. Winzer, T. Mitze, J. Bruns, K. Petermann, B. Huttl, and C. Schubert, "Performance of 40-Gb/s DPSK demodulator in SOI-technology," IEEE Photon. Technol. Lett. 20(8), 614-616 (2008). [CrossRef]
- R. Soref, J. Schmidtchen, and K. Petermann, "Large single-mode rib waveguides in GeSi-Si and Si-on-SiO2," IEEE J. Quantum Electron. 27(8), 1971-1974 (1991). [CrossRef]
- R. Halir, A. Ortega-Moñux, I. Molina-Fernández, J. Wangüemert-Pérez, P. Cheben, D. Xu, B. Lamontagne, and S. Janz, "Compact high performance multi-mode interference couplers in silicon-on-insulator," IEEE Photonics Technol. Lett. 21(21), 1600-1602 (2009). [CrossRef]
- R. Halir, P. Cheben, S. Janz, D. Xu, I. Molina-Fern’andez, and J.Wang¨uemert-P’erez, "Waveguide grating coupler with subwavelength microstructures," Opt. Lett. 34(9), 1408-1410 (2009). [CrossRef] [PubMed]
- K. Hill and G. Meltz, "Fiber Bragg grating technology fundamentals and overview," J. Lightwave Technol. 15(8), 1263-1276 (1997). [CrossRef]
- S. Helfert and R. Pregla, "Efficient analysis of periodic structures," J. Lightwave Technol. 16(9), 1694-1702 (1998). [CrossRef]
- T. Tamir and S. Peng, "Analysis and design of grating couplers," Appl. Phys.A-Mater. 14(3), 235-254 (1977).
- M. Schnarrenberger, L. Zimmermann, T. Mitze, K. Voigt, J. Bruns, and K. Petermann, "Low loss star coupler concept for AWGs in rib waveguide technology," IEEE Photonics Technol. Lett. 18(23), 2469-2471 (2006). [CrossRef]
- Q. Cao, P. Lalanne, and J. Hugonin, "Stable and efficient Bloch-mode computational method for one-dimensional grating waveguides," J. Opt. Soc. Am. A 19(2), 335-338 (2002). [CrossRef]
- L. Zavargo-Peche, C. A. Alonso-Ramos, A. Ortega-Moñux, R. Halir, J. G. Wangüemert-Pérez, and I. Molina-Fernández, "A tool for automatic grating design," in XVIII International Workshop Optical Waveguide Theory and Numerical Modeling (OWTNM 2009), 2009, p. 45.
- A. Ortega-Moñux, I. Molina-Fernández, and J. Wangüemert-Pérez, "3D-Scalar Fourier eigenvector expansion method (Fourier-EEM) for analyzing optical waveguide discontinuities," Opt. Quantum Electron 37(1), 213-228 (2005). [CrossRef]
Cited By |
OSA is able to provide readers links to articles that cite this paper by participating in CrossRef's Cited-By Linking service. CrossRef includes content from more than 3000 publishers and societies. In addition to listing OSA journal articles that cite this paper, citing articles from other participating publishers will also be listed.





OSA is a member of 