Zhu Li, Yang Weijian, Chang-Hasnain Connie
Opt Express. 2017 Jul 24;25(15):18462-18473. doi: 10.1364/OE.25.018462.
Integrated optical circuits are poised to open up an array of novel applications. A vibrant field of research has emerged around the monolithic integration of optical components onto the silicon substrates. Typically, single mode optical fibers deliver the external light to the chip, and submicron single-mode waveguides then guide the light on-chip for further processing. For such technology to be viable, it is critically important to be able to efficiently couple light into and out of the chip platform, and between the different components, with low losses. Due to the large volume mismatch between a fiber and silicon waveguide (on the order of 600), it has been extremely challenging to obtain high coupling efficient with large tolerance. To date, demonstrated coupling has been relatively lossy and effective coupling requires impractical alignment of optical components. Here, we propose the use of a high contrast metastructure (HCM) that overcomes these issues, and effectively couples the off-chip, out-of-plane light waves into on-chip, in-plane waveguides. By harnessing the resonance properties of the metastructure, we show that it is possible to spatially confine the incoming free-space light into subwavelength dimensions with a near-unity (up to 98%) efficiency. The underlying coupling mechanism is analyzed and designs for practical on-chip coupler and reflector systems are presented. Furthermore, we explore the two-dimensional HCM as an ultra-compact wavelength multiplexer with superior efficiency (90%).
集成光学电路有望开启一系列新颖的应用。围绕将光学元件单片集成到硅衬底上已形成了一个活跃的研究领域。通常,单模光纤将外部光传输到芯片,然后亚微米单模波导在芯片上引导光进行进一步处理。要使这种技术可行,能够以低损耗将光高效地耦合进芯片平台以及在不同组件之间耦合进出芯片至关重要。由于光纤与硅波导之间存在巨大的体积失配(约为600),要在大容差下获得高耦合效率极具挑战性。迄今为止,已证明的耦合损耗相对较大,有效的耦合需要光学元件进行不切实际的对准。在此,我们提出使用一种高对比度超材料(HCM)来克服这些问题,并有效地将芯片外、面外的光波耦合到芯片内、面内的波导中。通过利用超材料的共振特性,我们表明可以将近乎单位(高达98%)的效率将入射的自由空间光在空间上限制在亚波长尺寸内。分析了潜在的耦合机制,并给出了实用的芯片内耦合器和反射器系统的设计。此外,我们还探索了二维HCM作为一种具有卓越效率(90%)的超紧凑波长复用器。