Title :
Mode-matched ion-exchanged glass-waveguide bridge for high-performance dense wavelength division multiplexer
Author :
Zou, Jizuo ; Zhao, Feng ; Chen, Ray T.
Author_Institution :
Microelectron. Res. Center, Univ. of Texas, Austin, TX, USA
Abstract :
Data bit rate, 1-dB passband, and device dimensions are the key properties of dense wavelength division multiplexing (WDM) devices. For blazed-grating-based dense WDM devices, analysis shows that all these three properties can be enhanced by reducing the output fiber-array channel spacing. In this paper, we propose an ion-exchanged glass waveguide to reduce the output channel spacing. To fabricate the low-loss fiber-compatible waveguide, a field-assisted ion-exchange process is developed. The waveguides fabricated by this process have a propagation loss of 0.16 dB/cm and a coupling loss to single-mode fiber (SMF) of 0.1 dB. A 47-channel 100-GHz-spacing dense WDM integrated with the glass waveguide is then packaged and demonstrated. The device performance has verified the effectiveness of the proposed solution and the successfulness of the ion-exchanged glass-waveguide technique in this application.
Keywords :
channel spacing; diffraction gratings; integrated optics; ion exchange; multiplexing equipment; optical communication equipment; optical fibre communication; optical fibre fabrication; optical fibre losses; optical glass; optical waveguides; wavelength division multiplexing; WDM devices; blazed-grating; coupling loss; dense wavelength division multiplexer; fiber-compatible waveguide; glass-waveguide bridge; integrated optics; ion exchange process; ion-exchanged waveguide; low-loss waveguide; mode-matched waveguide; output channel spacing; output fiber-array channel spacing; propagation loss; single-mode fiber; Arrayed waveguide gratings; Bragg gratings; Bridges; Channel spacing; Fiber gratings; Lenses; Optical fiber devices; Optical fiber polarization; Optical waveguides; Wavelength division multiplexing; Glass waveguide; ion exchange; pulse broadening; wavelength division multiplexing (WDM);
Journal_Title :
Lightwave Technology, Journal of
DOI :
10.1109/JLT.2005.856283