Title :
Scalable, Low-Energy Hybrid Photonic Space Switch
Author :
Qixiang Cheng ; Wonfor, Adrian ; Penty, Richard V. ; White, Ian H.
Author_Institution :
Dept. of Eng., Univ. of Cambridge, Cambridge, UK
Abstract :
A scalable monolithically integrated photonic space switch is proposed which uses a combination of Mach-Zehnder modulators and semiconductor optical amplifiers (SOAs) for improved crosstalk performance and reduced switch loss. This architecture enables the design of high-capacity, high-speed, large-port count, low-energy switches. Extremely low crosstalk of better than -50 dB can be achieved using a 2 × 2 dilated hybrid switch module. A “building block” approach is applied to make large port count optical switches possible. Detailed physical layer multiwavelength simulations are used to investigate the viability of a 64 × 64 port switch. Optical signal degradation is estimated as a function of switch size and waveguide induced crosstalk. A comparison between hybrid and SOA switching fabrics highlights the power-efficient, high-performance nature of the hybrid switch design, which consumes less than one-third of the energy of an equivalent SOA-based switch. The significantly reduced impairments resulting from this switch design enable scaling of the port count, compared to conventional SOA-based switches.
Keywords :
Mach-Zehnder interferometers; integrated optics; optical crosstalk; optical design techniques; optical switches; semiconductor optical amplifiers; 2 × 2 dilated hybrid switch module; Mach-Zehnder modulators; SOA switching fabrics; SOA-based switch; building block approach; crosstalk performance; hybrid switch design; low-energy hybrid photonic space switch; optical signal degradation; optical switches; port count; scalable monolithically integrated photonic space switch; semiconductor optical amplifiers; waveguide induced crosstalk; Crosstalk; Fabrics; Optical switches; Optical waveguides; Ports (Computers); Semiconductor optical amplifiers; Mach–Zehnder interferometers; optical switches; packet switching; semiconductor optical amplifiers;
Journal_Title :
Lightwave Technology, Journal of
DOI :
10.1109/JLT.2013.2278708