Hollow glass waveguides with three-layer dielectric coating fabricated by chemical vapor deposition
- 1 June 1997
- journal article
- Published by Optica Publishing Group in Journal of the Optical Society of America A
- Vol. 14 (6) , 1255-1259
- https://doi.org/10.1364/josaa.14.001255
Abstract
Hollow glass waveguides with three dielectric layers are fabricated with a chemical vapor deposition technique. The waveguides have an inner three-layer stack of aluminum oxide and titanium oxide, with the thickness optimized for the 3-μm wavelength of a Er:YAG laser. The measured attenuation spectra of the waveguides in the mid-infrared region show interference peaks that are due to the multiple dielectric layers and also exhibit a low-loss region at the design wavelength of 3 μm. The theoretical evaluation of the waveguide loss, including the inner surface roughness of the guide, shows that the roughness strongly affects the transmission losses of the multilayer-coated waveguides.Keywords
This publication has 12 references indexed in Scilit:
- Optical properties of small-bore hollow glass waveguidesApplied Optics, 1995
- Infrared hollow glass waveguides fabricated by chemical vapor depositionOptics Letters, 1995
- Hollow glass waveguides for broadband infrared transmissionOptics Letters, 1994
- Er:YAG, CO, and CO_2 laser delivery by ZnS-coated Ag hollow waveguidesApplied Optics, 1993
- Characterization of hollow fibers for the transmission of infrared radiationApplied Optics, 1990
- Loss characteristics of circular hollow waveguides for incoherent infrared lightJournal of the Optical Society of America A, 1989
- Waveguide-loss evaluation in circular hollow waveguides and its ray-optical treatmentJournal of Lightwave Technology, 1985
- Design theory of dielectric-coated circular metallic waveguides for infrared transmissionJournal of Lightwave Technology, 1984
- Fabrication of germanium-coated nickel hollow waveguides for infrared transmissionApplied Physics Letters, 1983
- Specular Reflectance of Aluminized Ground Glass and the Height Distribution of Surface IrregularitiesJournal of the Optical Society of America, 1963