Nanostructured hybrid plasmonic waveguide in a slot structure for high-performance light transmission

被引:19
作者
Huang, Chia-Chih [1 ]
Chang, Ruei-Jan [2 ]
Huang, Chia-Chien [3 ]
机构
[1] Tungnan Univ, Dept Elect Engn, 152,Sec 3,Beishen Rd, New Taipei 222304, Taiwan
[2] Natl Chung Hsing Univ, Dept Phys, 145 Xingda Rd, Taichung 40227, Taiwan
[3] Natl Chung Hsing Univ, Inst Nanosci, 145 Xingda Rd, Taichung 40227, Taiwan
关键词
LOW-REFRACTIVE-INDEX; ENERGY-DISSIPATION; CONFINING LIGHT; SURFACE-PLASMON; NANOWIRE; PROPAGATION; INTERCONNECTS; CONFINEMENT; EMISSION;
D O I
10.1364/OE.438771
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Squeezing light to nanoscale is the most vital capacity of nanophotonic circuits processing on-chip optical signals that allows to significantly enhance light-matter interaction by stimulating various nonlinear optical effects. It is well known that plasmon can offer an unrivaled concentration of optical energy beyond the optical diffraction limit. However, the progress of plasmonic technology is mainly hindered by its ohmic losses, thus leading to the difficulty in building large-area photonic integrated circuits. To significantly increase the propagation distance of light, we develop a new waveguide structure operating at the telecommunication wavelength of 1,550 nm. It consists of a nanostructured hybrid plasmonic waveguide embedded in a high-index-contrast slot waveguide. We capitalize on the strong mode confinement of the slot waveguide and reduce mode areas with the nanostructured hybrid plasmonic configuration while maintaining extremely low ohmic losses using a nanoscale metal strip. The proposed design achieves a record propagation distance of 1,115 mu m while comparing with that of other designs at a mode area of the order of 10(-5) A(0) (A(0) is the diffraction-limited area). The mode characterization considering fabrication imperfections and spectral responses show the robustness and broadband operation range of the proposed waveguide. Moreover, we also investigated the crosstalk to assess the density of integration. The proposed design paves the way for building nanophotonic circuits and optoelectronic devices that require strong light-matter interaction. (C) 2021 Optical Society of America under the terms of the OSA Open Access Publishing Agreement
引用
收藏
页码:29341 / 29356
页数:16
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