DocumentCode :
1891373
Title :
Towards High-Performance and Power-Efficient Optical NoCs Using Silicon-in-Silica Photonic Components
Author :
Kakoulli, Elena ; Soteriou, Vassos ; Koutsides, Charalambos ; Kalli, Kyriacos
Author_Institution :
Dept. of Electr. Eng., Comput. Eng. & Inf., Cyprus Univ. of Technol., Limassol, Cyprus
fYear :
2015
fDate :
19-19 Jan. 2015
Firstpage :
1
Lastpage :
4
Abstract :
Networks-on-Chips (NoCs) are meeting the growing inter-tile communication needs of multicore chips. However, achieving system scalability by utilizing hundreds of cores on-chip requires high performance, yet energy-efficient on-chip interconnects. As electrical interconnects are marred by high energy-to-bandwidth costs, threatening multicore scalability, on-chip nanophotonics, which offer high throughput, yet energy-efficient communication, are an alternative attractive solution. In this paper we consider silicon nanophotonic components that are embedded completely within the silica (SiO2) substrate as opposed to prior-art that utilizes die on-surface silicon nanophotonics. As nanophotonic components now reside in the silica substrate´s subsurface, a greater portion of a chip´s real estate can be utilized by cores and routers, while non-obstructive interconnect geometries offering higher network throughput can be implemented. First, we show using detailed simulations based on commercial tools that such silicon-in-silica (SiS) structures are feasible, and then demonstrate our proof of concept by utilizing a hybrid SiS-based photonic mesh-diagonal links topology that provides both higher effective throughput and throughput-to-power ratio versus prior-art.
Keywords :
elemental semiconductors; integrated optoelectronics; nanophotonics; network-on-chip; optical interconnections; silicon; silicon compounds; Si-SiO2; high-performance optical NoC; hybrid SiS-based photonic mesh-diagonal links topology; nonobstructive interconnect geometries; power-efficient optical NoC; silica substrate; silicon nanophotonic components; silicon-in-silica photonic components; silicon-in-silica structures; Computer architecture; Nanophotonics; Optical waveguides; Ports (Computers); Silicon; Topology; Nanophotonics; Networks-on-Chips; Photonic Interconnects; Silicon-in-Silica;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Interconnection Network Architectures: On-Chip, Multi-Chip (INA-OCMC), 2015 Ninth International Workshop on
Conference_Location :
Amsterdam
Print_ISBN :
978-1-4799-1869-0
Type :
conf
DOI :
10.1109/INA-OCMC.2015.12
Filename :
7051994
Link To Document :
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