Institute for Microstructural Sciences, National Research Council Canada, K1A 0R6 Ottawa, Canada.
Opt Lett. 2010 Aug 1;35(15):2526-8. doi: 10.1364/OL.35.002526.
We use subwavelength gratings (SWGs) to engineer the refractive index in microphotonic waveguides, including practical components such as input couplers and multiplexer circuits. This technique allows for direct control of the mode confinement by changing the refractive index of a waveguide core over a range as broad as 1.6-3.5 by lithographic patterning. We demonstrate two experimental examples of refractive index engineering, namely, a microphotonic fiber-chip coupler with a coupling loss as small as -0.9dB and minimal wavelength dependence and a planar waveguide multiplexer with SWG nanostructure, which acts as a slab waveguide for light diffracted by the grating, while at the same time acting as a lateral cladding for the strip waveguide. This yields an operation bandwidth of 170nm for a device size of only approximately 160microm x100microm.
我们使用亚波长光栅(SWG)来设计微光子波导的折射率,包括输入耦合器和复用器电路等实际组件。通过光刻图案化,可以将波导芯的折射率在 1.6-3.5 的宽范围内进行直接控制,从而实现对模式限制的直接控制。我们展示了两个折射率工程的实验示例,即具有耦合损耗低至-0.9dB 且波长依赖性最小的微光子光纤-芯片耦合器,以及具有 SWG 纳米结构的平面波导复用器,该结构充当由光栅衍射的光的平板波导,同时充当条形波导的横向包层。对于尺寸仅约为 160μm×100μm 的器件,其工作带宽为 170nm。