References Infrared Fiber Review

IR Fibers | Introduction | Non-oxide & H-M oxide glass | Crystalline | Hollow | Conclusions | References
 

01. Kapany, N. S. and Simms, R. J., "Recent developments of infrared fiber optics," Infrared
Physics, vol. 5, pg. 69, 1965.

02. Harrington, J. A., Selected Papers on Infrared Fiber Optics, Milestone Series, Volume
MS-9," SPIE Press, Bellingham, WA, SPIE Press, Bellingham, WA, 1990.

03. Katsuyama, T. and Matsumura, H., Infrared Optical Fibers, 1989.

04. Aggarwal, I. and Lu, G., Fluoride Glass Optical Fiber, 1991.

05. France, P., Drexhage, M. G., Parker, J. M., Moore, M. W., Carter, S. F., and Wright, J.
V., Fluoride Glass Optical Fibres, 1990.

06. Sanghera, J. and Aggarwal, I., Infrared Fiber Optics, 1998.

07. Kaiser, P., Hart, A. C. Jr., and Blyler, L. L., "Low loss FEP-clad silica fibers," Appl. Opt.,
vol. 14, pg. 156, 1975.

08. Poulain, M., Chanthanasinh, M., and Lucas, J., "New fluoride glasses," Mat. Res. Bull.,
vol. 12, pp. 151-156, 1977.

09. Tran, D., Sigel, G. H., and Bendow, B., "Heavy metal fluoride glasses and fibers: A
review," J. Lightwave Tech., vol. LT-2, pp. 566-586, 1984.

10. Itoh, K., Miura, K., Masuda, M., Iwakura, M., and Yamagishi, T., "Low-loss fluorozirco-
aluminate glass fiber," in Proceedings of 7th International Symposium on Halide Glass,
Center for Advanced Materials Technology, Monash University, Lorne, Victoria,
Australia,pp. 2.7-2.12, 1991.

11. France, P. W., Carter, S. F., Moore, M. W., and Day, C. R., "Progress in fluoride fibres for
optical communications," British Telecom Tech. J., vol. 5, pp. 28-44, 1987.

12. Carter, S. F., Moore, M. W., Szebesta D., Ransom.D., and France, P. W., "Low loss
fluoride fibre by reduced pressure casting.," Electron. Lett., vol. 26, pp. 2115-2117, 1990.

13. Matthewson, M. J., Kurkjian, C. R., and Gulati, S. T., "Strength measurement of optical
fibers by bending," J. Am. Cer. Soc., vol. 69, pp. 815-821, 1986.

14. Kobayashi, S., Shibata, N., Shibata, S., and Izawa, T., "Characteristics of optical fibers in
infrared wavelength region," Rev. Electrical Comm. Lab, vol. 26, pp. 453-467, 1978.

15. Tran, D., "Heavy metal-oxide glass optical fibers for use in laser medical surgery," U.S.
Patent no. 5,274, 728 issued Dec. 28, 1993.

16. Kanamori, Y., Terunuma, Y., and Miyashita, T., "Preparation of chalcogenide optical fiber,"
Rev. Electrical Comm. Lab, vol. 32, pp. 469-477, 1984.

17. Nishii, J., Morimoto, S., Inagawa, I., Iizuka, R., Yamashita, T., and Yamagishi, T., "Recent
advances and trends in chalcogenide glass fiber technology: a review," J. Non-Cryst. Sol.,
vol. 140, pp. 199-208, 1992.

18. Nishii, J., Yamashita, T., Tamagishi, T., Tanaka, C., and Sone, H., "As2S3 fibre for infrared
image bundle," Int. J. Optoelectronics, vol. 7, pp. 209-216, 1992.

19. Nubling, R. and Harrington, J. A., "Optical properties of single-crystal sapphire fibers,"
Appl. Opt., vol. 36, pp. 5934-5940, 1997.

20. Artjushenko, V. G., Butvina, L. N., Vojtsekhovsky, V. V., Dianov, E. M., and Kolesnikov, J.
G., "Mechanisms of optical losses in polycrystalline KRS-5 fibers," J. Lightwave Tech., vol.
LT-4, pp. 461-465, 1986.

21. Sa'ar, A., Moser, F., Akselrod, S., and Katzir, A., "Infrared optical properties of
polycrystalline silver halide fibers," Appl. Phys. Lett., vol. 49, pp. 305-307, 1986.

22. Pinnow, D. A., Gentile, A. L., Standlee, A. G., Timper, A. J., and Hobrock, L. M.,
"Polycrystalline fiber optical waveguides for infrared transmission," Appl. Phys. Lett., vol.
33, pp. 28-29, 1978.

23. Artjushenko, V., Ionov, V., Kalaidjian, K. I., Kryukov, A. P., Kuzin, E. F., Lerman, A. A.,
Prokhorov, A. S., Stepanov, E. V., Bakhshpour, K., Moran, K. B., and Neuberger, W.,
"Infrared fibers: power delivery and medical applications," Proc. SPIE, vol. 2396, pp. 25-36,
1995.

24. Takahashi, K., Yoshida, N., and Yokota, M., "Optical fibers for transmitting high-power
CO2 laser beam," Sumitomo Electric Tech. Rev., vol. 23, pp. 203-210, 1984.

25. Wysocki, J. A., Wilson, R. G., Standlee, A. G., Pastor, A. C., Schwartz, R. N., Williams,
A. R., Guan-Dao Lei, and Kevan, L., "Aging effects in bulk and fiber TlBr-TlI," J. Appl.
Phys., vol. 63, pp. 4365-4371, 1988.

26. Jundt, D. H., Fejer, M. M., and Byer, R. L., "Characterization of single-crystal sapphire
fibers for optical power delivery systems," Appl. Phys. Lett., vol. 55, pp. 2170-2172, 1989.

27. Chang, R. S. F., Phomsakha, V., and Djeu, N., "Recent advances in sapphire fibers,"
Proc. SPIE, vol. 2396, pp. 48-53, 1995.

28. Nubling, R. and Harrington, J. A., "Single-crystal LHPG sapphire fibers for Er:YAG laser
power delivery," Appl. Opt., vol. 37, pp. 4777-4781, 1998.

29. LaBelle, H. E., "EFG, the invention and application to sapphire growth," J. Cryst. Growth,
vol. 50, pp. 8-17, 1980.

30. Garmire, E., McMahon, T., and Bass, M., "Flexible infrared waveguides for high-power
transmission," J. Quant. Elect., vol. QE-16, pp. 23-32, 1980.

31. Saggese, S. J., Harrington, J. A., and Sigel, G. H., Jr., "Attenuation of incoherent infrared
radiation in hollow sapphire and silica waveguides," Opt. Lett., vol. 16, pp. 27-29, 1991.

32. Saito, M., Matsuura, Y., Kawamura, M., and Miyagi, M., "Bending losses of incoherent
light in circular hollow waveguides," J. Opt. Soc. Am. A, vol. 7, pp. 2063-2068, 1990.

33. Saito, M. and Kikuchi, K., "Infrared optical fiber sensors," Optical Review, vol. 4, pp. 527-
538, 1997.

34. Hongo, A., Morosawa, K., Matsumoto, K., Shiota, T., and Hashimoto, T., "Transmission of
kilowatt-class CO2 laser light through dielectric-coated metallic hollow waveguides for
material processing," Appl. Opt., vol. 31, pp. 5114-5120, 1992.

35. Matsuura, Y., Miyagi, M., and Hongo, A., "Fabrication of low-loss zinc-selenide coated
silver hollow waveguides for CO2 laser light," J. Appl. Phys., vol. 68, pp. 5463-5466, 1990.

36. Alaluf, M., Dror, J., Dahan, R., and Croitoru, N., "Plastic hollow fibers as a selective
infrared radiation transmitting medium," J. Appl. Phys., vol. 72, pp. 3878-3883, 1992.

37. Matsuura, Y., Abel, T., and Harrington, J. A., "Optical properties of small-bore hollow glass
waveguides," Appl. Opt., vol. 34, pp. 6842-6847, 1995.

38. Gregory, C. C. and Harrington, J. A., "Attenuation, modal, polarization properties of n<1,
hollow dielectric waveguides," Appl. Opt., vol. 32, pp. 5302-5309, 1993.

39. Harrington, J. A. and Gregory, C. C., "Hollow sapphire fibers for the delivery of CO2 laser
energy," Opt. Lett., vol. 15, pp. 541-543, 1990.

40. Miyagi, M., Shimada, Y., Hongo, A., Sakamoto, K., and Nishida, S., "Fabrication and
transmission properties of electrically deposited germanium-coated waveguides for infrared
radiation," J. Appl. Phys., vol. 60, pp. 454-456, 1986.

41. Morhaim, O., Mendlovic, D., Gannot, I., Dror, J., and Croitoru, N., "Ray model for
transmission of infrared radiation through multibent cylindrical waveguides," Opt. Eng., vol.
30, pp. 1886-1891, 1991.

42. Bhardwaj, P., Gregory, O. J., Morrow, C., Gu, G., and Burbank, K., "Performance of a
dielectric-coated monolithic hollow metallic waveguide," Mat. Lett., vol. 16, pp. 150-156,
1993.

43. Abel, T., Hirsch, J., and Harrington, J. A., "Hollow glass waveguides for broadband infrared
transmission," Opt. Lett., vol. 19, pp. 1034-1036, 1994.

44. Marcatili, E. A. J. and Schmeltzer, R. A., "Hollow metallic and dielectric waveguides for
long distance optical transmission and lasers," Bell Syst. Tech. J., vol. 43, pp. 1783-1809,
1964.

45. Nubling, R. K. and Harrington, J. A., "Hollow-waveguide delivery systems for high-power,
industrial CO2 lasers," Appl. Opt., vol. 34, pp. 372-380, 1996.

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IR Fibers | Introduction | Non-oxide & H-M oxide glass | Crystalline | Hollow | Conclusions | References
 

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