To investigate light coupling between a long range surface plasmon polariton (LRSPP) waveguide and a conventional integrated optical component, a hybrid vertical directional coupler consisting of a LRSPP waveguides and a dielectric waveguide is investigated and fabricated. In the proposed coupler th
Design and analysis of a vertical directional coupler between a three-dimensional plasmonic slot waveguide and a silicon waveguide
β Scribed by Jin-Soo Shin; Min-Suk Kwon; Sang-Yung Shin
- Publisher
- Elsevier Science
- Year
- 2011
- Tongue
- English
- Weight
- 988 KB
- Volume
- 284
- Category
- Article
- ISSN
- 0030-4018
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β¦ Synopsis
The design of a vertical directional coupler between a three-dimensional plasmonic slot waveguide and a silicon waveguide is theoretically investigated in detail. It consists of two steps: the design of isolated plasmonic slot waveguide and silicon waveguide and the determination of the gap between the two waveguides and the length of a coupling region. The designed structure transfers 70.8% of the power carried by the silicon waveguide mode to the plasmonic slot waveguide mode when the gap is 150 nm and the coupling length is 2.14 ΞΌm. The wavelength dependence of our vertical directional coupler is also studied. The analysis shows that the amount of the transferred power changes slightly over a very wide wavelength range between 1.40 ΞΌm and 1.61 ΞΌm. Moreover, if we employ the fabrication technology for silicon photonics, it is quite tolerant to the variation of the length of its coupling section. Finally, the vertical directional coupler is considered for a polarizer.
π SIMILAR VOLUMES
more accurate since, for these formulations, the radiation condition is enforced in the exact sense. The solution method presented in this work is simple, accurate, and free of latetime instabilities. However, the method requires the storage and a one-time inversion of a sparse matrix, a small price
## Abstract A fast, higher order threeβdimensional finiteβelement method is presented for the efficient and accurate analysis of microwave waveguide devices. Two solution algorithms are designed. The first one uses mixedβorder triangular prism elements in conjunction with a special frontal solver.