DocumentCode
1760953
Title
CMOS-Compatible Polarization Splitter for 3-D Silicon Photonic Integrated Circuits
Author
Jin Tae Kim
Author_Institution
Creative Future Res. Lab., Electron. & Telecommun. Res. Inst., Daejeon, South Korea
Volume
32
Issue
11
fYear
2014
fDate
41791
Firstpage
2123
Lastpage
2127
Abstract
To achieve intra-chip three-dimensional (3-D) integration of silicon photonic circuits, we design a polarization beam splitter based on complementary metal-oxide-semiconductor (CMOS) platform. With the aid of the polarization-dependent nature of the center waveguide in a three-port directional coupler, the device separates the TM- and TE-polarization modes onto different layers of 3-D silicon photonic circuits. Numerical simulations with a full vectorial beam propagation method exhibit that we can obtain a 10 μm-long polarization splitter with extinction ratio better than 20 dB on the entire C-band. The optical device without the vertical offset can serve as a horizontal polarization splitter with nearly the same optical characteristics. We conclude that the proposed polarization beam splitter is compatible not only with the CMOS structure but also with the CMOS fabrication process.
Keywords
CMOS integrated circuits; elemental semiconductors; integrated optoelectronics; light polarisation; light propagation; numerical analysis; optical beam splitters; optical design techniques; optical directional couplers; optical fabrication; optical waveguides; silicon; 3D silicon photonic integrated circuits; C-band; CMOS fabrication process; CMOS structure; CMOS-compatible polarization splitter; Si; TE-polarization modes; TM-polarization modes; center waveguide; complementary metal-oxide-semiconductor platform; extinction ratio; full vectorial beam propagation method; horizontal polarization splitter; intrachip three-dimensional integration; numerical simulations; optical device; polarization beam splitter; polarization-dependent nature; size 10 mum; three-port directional coupler; CMOS integrated circuits; Couplers; Couplings; Extinction ratio; Optical waveguides; Ports (Computers); Silicon; MOS integrated circuit; nanophotonics; optical interconnections; photonic integrated circuit (PIC); silicon photonics;
fLanguage
English
Journal_Title
Lightwave Technology, Journal of
Publisher
ieee
ISSN
0733-8724
Type
jour
DOI
10.1109/JLT.2014.2320993
Filename
6807685
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