Agrawal, “Fiber-Optic Communication Systems,” A Wiley-Interscience Publication, The Institute of Optics University of Rochester NY, pp. 284-360. |
Ford et al., “Fiber-Coupled Variable Attenuator Using a MARS Modulator,” Invited Paper, SPIE, vol. 3226, pp. 86-93. |
Sadot et al., “Tunable Optical Filters for Dense WDM Networks,” IEEE Communications Magazine, pp. 50-55. |
Goossen, “MEMS-Based Variable Optical Interference Device,” IEEE, Invited MBI, pp. 17-18. |
Walker et al., “Mechanical Anti-Reflection Switch (MARS) Device for Fiber-In-the-Loop Applications,” Invited FA1, pp. 59-60. |
Jerman, “Minature Fabry-Perot Interoferometer Micromachined in Silicon for use in Optical Fiber WDM Systems,” Transducers '91, International Solid-State Conference on Sensors and Actuators, pp. 372-375. |
Wu et al., “Widely and Continuously Tunable Micromachines Resonant Cavity Detector with Wavelength Tracking,” IEEE Photonics Technology Letters, vol. 8, No. 1, pp. 98-99. |
Vail et al., “GaAs micromachined widely tunable Fabry-Perot Filters,” Electronics Letters, vol. 31, No. 3, pp. 228-229. |
Vail et al., “High performance micromechanical tunable vertical cavity surface emitting lasers,” Electronics Letters, vol. 32, No. 20, 2 pages. |
Tayebati et al., “Microelectromechanical tunable filter with stable half symmetric cavity,” Electronics Letters, vol. 34, No. 20, pp. 1967-1968. |
Tayebati et al., “Microelectromechanical tuneable filters with 0.47 nm linewidth and 70 nm tuning range,” Electronics Letters, vol. 34, No. 1, 2 pages. |
Tayebati et al., “Widely Tunable Fabry-Perot Filter Using Ga(A1)As-A1Ox Deformable Mirrors,” IEEE Photonics Technology Letters, vol. 10, No. 3, pp. 394-396. |
Tran et al., “Surface Micromachined Fabry-Perot Tunable Filter,” IEEE Photonics Technology Letters, vol. 8, NO. 3, pp. 393-395. |
Burns et al., “Optical beam steering using surface micromachined gratings and optical phased arrays,” SPIE, vol. 3131, pp. 99-110. |
Burns et al, “Designs to improve polysilicon micromirror surface topology,” SPIE, vol. 3008, pp. 100-110. |
“1-D vs. 2-D vs. 3-D MEMS Optical Switch Architectures,” Network Photonics, pp. 1-3. |
“CrossWave™ Reliable MEMS-Based Optical Switch, Network Photonics, pp. 1-4. |
Ford et al, “Micromechanical Fiber-Optic Attenuator with 3 μs Response,” Journal of Lightwave Technology, vol. 16, No. 9, pp. 1663-1670. |
Walker et al., “Fabrication of a Mechanical Antireflection Switch for Fiber-to-the-Home Systems,” Journal of Microelectromechanical Systems, vol. 12, No. 7, pp. 831-833. |
Goosen et al., “Micromechanical Gain Slope Compensator for Spectrally linear Optical Power Equalization,” IEEE Photonics Technology Letters, vol. 12, No. 7, pp. 831-833. |
Goossen et al., “Integrated mechanical anti-reflection switch (MARS) device for fiber-to-the-home applications,” http://mirlynweb.lib.umich.edu/WebZ/FETCH?sessionid=01-35557-462149016&recno=&re. |
“ELASTIC-45 tunable interferometer component,” Solus, Preliminary Datasheet and applications. |