“Current Status of Flexible Waveguides for IR Laser Radiation Transmission” by Gannot et al., IEEE Journal of Selected Topics In Quantum Electronics, vol.2, No. 4, Dec. 1996, pp. 880-888. |
Doran et al., “Cylindrical Bragg Fibers: A Design and Feasibility Study for Optical Communications,” Journal of Lightwave Technology, vol. LT-1, No. 4, pp. 588-590, Dec. 1983,. |
Miyagi et al., “Transmission Characteristics of Dielectric-Coated Metallic Waveguide for Infrared Transmission: Slab Waveguide Model,” IEEE Journal of Quantum Electronics, vol. QE-19, No. 2, pp. 136-145, Feb. 1983. |
Miyagi et al., “Design Theory of Dielectric-Coated Circular Metallic Waveguides for Infrared Transmission,” Journal of Lightwave Technology, vol. LT-2, No. 2, pp. 116-126, Apr. 1984. |
Marcatili et al., “Hollow Metallic and Dielectric Waveguides for Long Distance Optical Transmission and Lasers,” The Bell System Technical Journal, pp. 1783-1809, Jul. 1964. |
Martijn et al., “Differential Losses in Bragg Fibers,” J.Appl.Phys., 76(2), pp. 680-688, Jul. 15, 1994. |
Lazarchik, “Bragg Fiber Lightguides,” originally published in Radiotekhnika I Elektronika, No. 1, 1988, pp. 36-43. |
Fink et al., “A Dielectric Omnidirectional Reflector,” Science, vol. 282, pp. 1679-1682, Nov. 27, 1998. |
Brechet et al., “Singlemode Propagation into Depressed-core-index Photonic-bandgap Fibre Designed for Zero-dispersion Propagation at Short Wavelengths,” Electronics Letters, vol. 36, No. 6, pp. 514-515, Mar. 16, 2000. |
Brechet et al., “Analysis of Bandpass Filtering Behaviour of Singlemode Depressed-core-index Photonic-bandgap Fibre,” Electronics Letters, vol. 36, No. 10, pp. 870-871, May 11, 2000. |
Yeh et al., “Theory of Bragg Fiber,” Journal of the Optical Society of America, vol. 68, No. 9, pp. 1196-1201, Sep. 1978. |