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1.
Opt Express ; 20(26): B256-63, 2012 Dec 10.
Article in English | MEDLINE | ID: mdl-23262860

ABSTRACT

One of the most serious issues in information industries is the bandwidth bottleneck in inter-chip interconnects. We propose a photonics-electronics convergence system to solve this issue. We fabricated a high density optical interposer to demonstrate the feasibility of the system by using silicon photonics integrated with an arrayed laser diode, an optical splitter, silicon optical modulators, germanium photodetectors, and silicon optical waveguides on a single silicon substrate. Error-free data transmission at 12.5 Gbps and a transmission density of 6.6 Tbps/cm2 were achieved with the optical interposer. We believe this technology will solve the bandwidth bottleneck problem in the future.

2.
Opt Express ; 19(26): B159-65, 2011 Dec 12.
Article in English | MEDLINE | ID: mdl-22274013

ABSTRACT

Engineers are currently facing some technical issues in support of the exponential performance growths in information industries. One of the most serious issues is a bottleneck of inter-chip interconnects. We propose a new "Photonics-Electronics Convergence System" concept. High density optical interconnects integrated with a 13-channel arrayed laser diode, silicon optical modulators, germanium photodetectors, and silicon optical waveguides on single silicon substrate were demonstrated for the first time using this system. A 5-Gbps error free data transmission and a 3.5-Tbps/cm(2) transmission density were achieved. We believe that this technology will solve the bandwidth bottleneck problem among LSI chips in the future.

3.
Opt Express ; 17(16): 14063-8, 2009 Aug 03.
Article in English | MEDLINE | ID: mdl-19654814

ABSTRACT

A wavelength tunable laser with an SOA and external double micro-ring resonator, which is fabricated with silicon photonic-wire waveguides, is demonstrated. To date, it is the first wavelength tunable laser fabricated with silicon photonic technology. The device is ultra compact, and its external resonator footprint is 700 x 450 microm, which is about 1/25 that of conventional tunable lasers fabricated with SiON waveguides. The silicon resonator shows a wide tuning range covering the C or L bands for DWDM optical communication. We obtained a maximum tuning span of 38 nm at a tuning power consumption of 26 mW, which is about 1/8 that of SiON-type resonators.


Subject(s)
Lasers , Refractometry/instrumentation , Silicon/chemistry , Telecommunications/instrumentation , Transducers , Computer Simulation , Computer-Aided Design , Equipment Design , Equipment Failure Analysis , Light , Miniaturization , Models, Theoretical , Photons , Scattering, Radiation
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