Title :
Design of a single-mode tapered waveguide for low-loss chip-to-fiber coupling
Author :
Mitomi, Osamu ; Kasaya, Kazuo ; Miyazawa, Hiroshi
Author_Institution :
NTT Opto-Electron. Labs., Kanagawa, Japan
fDate :
8/1/1994 12:00:00 AM
Abstract :
The novel waveguide structures described in this paper have nonlinearly tapered shapes that result in low radiation losses despite their relatively short lengths. The core at the waveguide endface connected with the fiber has a very small cross section and an expanded mode field with a non-Gaussian shape. The taper structures are analyzed by using an improved step-transition method. This method is a based on the theory of enclosing a waveguide within electrical walls and that can therefore treat the radiation modes in a tapered waveguide as discrete mode spectra. Analyzing the relationships between the lengths and shapes of the tapers and the radiation loss due to the tapers show that appropriately tapered semiconductor waveguides operating at an optical wavelength of 1.55 μm and having a taper length of less than 0.7 mm can have a radiation loss of only 0.1 dB and a coupling loss with a conventional single-mode fiber of less than 0.5 dB
Keywords :
integrated optics; nonlinear optics; optical couplers; optical design techniques; optical fibres; optical losses; optical waveguides; 0.1 dB; 0.5 dB; 0.77 mm; 1.55 mum; appropriately tapered semiconductor waveguides; conventional single-mode fiber; coupling loss; discrete mode spectra; electrical walls; expanded mode field; improved step-transition method; low radiation losses; low-loss chip-to-fiber coupling; nonGaussian shape; nonlinearly tapered shapes; optical wavelength; radiation loss; radiation modes; relatively short lengths; single-mode tapered waveguide design; taper length; taper structures; very small cross section; waveguide endface; waveguide structures; Optical coupling; Optical fiber communication; Optical fiber devices; Optical fiber losses; Optical propagation; Optical refraction; Optical variables control; Optical waveguides; Semiconductor waveguides; Shape;
Journal_Title :
Quantum Electronics, IEEE Journal of