US 2002/0114062 A1, “Optical Performance Monitoring for D/WDM Networks”, Simard et al.* |
U.S. patent application Ser. No. 09/380,346, filed Nov. 18, 1999, entitled “Device for Demultiplexing Spectrum Lines Contained in an Optical Spectrum,”. |
Clemens et al., “8-Channel Optical Demultiplexer Realized as SiO2/Si Flat-Field Spectrograph,” IEEE Photonics Technology Letters, vol. 6, No. 9, Sep., 1994, pp. 1109-1111. |
Grand et al., “Réseau Blazé à Profil Trés Vertical en Silice Sur Silicium—Application au Multiplexage Pour Communications Optiques,” LETI(CEA-Technologies Avancées) DOPT/CENG, 17 reu des Martyrs, 38054 Grenoble Cedex 9, France. |
Verbeek et al., “Integrated Four-Channel Mach-Zehnder Multi-Demultiplexer Fabricated with Phosphorous Doped SiO2 Waveguides on Si,” Journal Of Lightwave Technology, vol. 6, No. 6, Jun. 1988, pp. 1011-1015. |
Takahashi et al., “Transmission Characteristics of Arrayed Waveguide N × N Wavelength Multiplexer,” Journal Of Lightwave Technology, vol. 13, No. 3, Mar. 1995, pp. 447-455. |
Okamoto et al., “Fabrication of 64 × 64 Arrayed-Waveguide Grating Multiplexer on Silicon,” Electronics Letters, Feb. 2, 1995, vol. 31, No. 3, pp. 184-186. |
Delisle et al., “Reduced-Size Low-Crosstalk PECVD Silica Phasar Using Widened Continuous Bends,” LETI-CEA (Département de Microtechnologies), 17 rue des Martyrs, F-38054 Grenoble, Cedex 9, France, pp. 72-75. |
Joseph W. Goodman, Stanford University, Department of Electrical Engineering, “Introduction to Fourier Optics,” A MaGraw-Hill Classic Textbook Reissue, McGraw-Hill Publishing Company. |
Seppo Honkanen, Nokia Research Center, Helsinki, Finland and Helsinki University of Technology, Espoo, Finland, “Ion-Exchanged Glass Waveguide Devices for Optical Communications,” Critical Reviews, vol. CR53, pp. 159-179. |
Ludwig Roβ, “Integrated Optical Components in Substrate Glasses,” Glastech. Ber., 62 (1989) Nr. 8, pp. 285-297. |
Valette et al., “Si-Based Integrated Optics Technologies,” Solid State Technology, Feb. 1989, pp. 69-74. |
Hunziker et al., Institute of Quantum Electronics, Swiss Federal Institute of Technology, ETH Hoenggerberg, CH-8093 Zurich, Switzerland, Self-Aligned Optical Flip-Chip OEIC Packaging Technologies, pp. 84-91. |
Grand et al., “New Method for Low Cost and Efficient Optical Connections Between Singlemode Fibres and Silica Guides,” Electronics Letters, Jan. 3, 1991, vol. 27, No. 1, pp. 16-18. |
Ainslie et al., BT Laboratories, Martlesham Heath, Ipswich IP5 7RE, United Kingdom, Photosensitive Glass Integrated Optical Devices, pp. 235-249. |
Maxwell et al., “UV Written 1·5μm Reflection Filters in Single Mode Planar Silica Guides,” Electronics Letters, Oct. 22, 1992, vol. 28, No. 22, pp. 2106-2107. |
Hill et al., “Bragg Gratings Fabricated in Monomode Photosensitive Optical Fiber by UV Exposure Through a Phase Mask,” Applied Physics Letters 62 (10), Mar. 8, 1993, pp. 1035-1037. |
Yasuji Ohmori, NTT Opto Electronics Laboratories, Tokai, Ibaraki 319-11, Japan, “Passive and Active Silica Waveguides on Silicon,” pp. 19-26. |
Valette et al., “Silicon-Based Integrated Optics Technology for Optical Sensor Applications,” Sensors And Actuators, A21 A23 (1990) pp. 1087-1091. |
Izutsu et al., “Operation Mechanism of the Single-Mode Optical-Waveguide Y Junction,” Optics Letters, vol. 7, No. 3, Mar. 1982, pp. 136-138. |
Rowe et al., “High-Reflectivity Surface-Relief Gratings in Single-Mode Optical Fibres,” IEE Proceedings, vol. 134, Pt. J, No. 3, Jun. 1987, pp. 197-202. |
Bilodeau et al., “Photosensitization of Optical Fiber and Silica-on-Silicon/Silica Waveguides,” Optics Letters, Jun. 15, 1993, vol. 18, No. 12, pp. 953-955. |
Kashyap et al., “Novel Method of Producing All Fibre Photoinduced Chirped Gratings,” Electronics Letters Online No.; 19940669, Apr. 18, 1994, ©IEE 1994. |
Farries et al., “Very Broad Reflection Bandwidth (44nm) Chirped Fibre Gratings and Narrow Bandpass Filters Produced by the Use of an Amplitude Mask,” Electronics Letters Online No. 19940609, May 3, 1994, ©IEE 1994. |
Meltz et al., “Formation of Bragg Gratings in Optical Fibers by a Transverse Holographic Method,” Optics Letters, Aug. 1, 1989, vol. 14, No. 15, pp. 823-825. |
Kashyap et al., “Laser-Trimmed Four-Port Bandpass Filter Fabricated in Single-Mode Photosensitive Ge-Doped Planar Waveguide,” IEEE Photonics Technology Letters, vol. 5, No. 2, Feb. 1993, pp. 191-194. |
Baumann et al., “Compact All-Fiber Add-Drop-Multiplexer Using Fiber Bragg Gratings,” IEEE Photonics Technology Letters, vol. 8, No. 10, Oct. 1996, pp. 1331-1333. |
Ferdinand et al., “Mine Operating Accurate STABILity Control with Optical Fiber Sensing and Bragg Grating Technology: The Euoroean BRITE/EURAM STABILOS Project,” Journal Of Lightwave Technology, vol. 13, No. 7, Jul. 1995, pp. 1303-1313. |
Melle et al., “A Passive Wavelength Demodulation System for Guided-Wave Bragg Grating Sensors,” IEEE Photonics Technology Letters, vol. 4, No. 5, May 1991, pp. 516-518. |
Mestric et al., Alcatel Alsthom Corporate Research Centre, Alcatel-Alsthom Recherche, Route de Nozay, 91460 Marcoussis, France, “Up to 16 Channel Phased-Away Wavelength Demultiplexers on Inp with -20 dB Crosstalk,” pp. 264-267. |
Davis et al., “All-Fibre Bragg Grating Strain-Sensor Demodulation Technique Using a Wavelength Division Coupler,” Electronics Letters, Jan. 6, 1994, vol. 30, No. 1, pp. 75-77. |
Ball et al., “Single- and Multipoint Fiber-Laser Sensors,” IEEE Photonics Technology Letters, vol. 6, No. 2, Feb. 1993, pp. 267-270. |
Davis M A et al: “Matched-Filter Interrogation Technique For Fibre Bragg Grating Arrays” Electronics Letters, vol. 31, No. 10, May 11, 1995, pp. 822/823. |