Augenstein Yannick, Vetter Andreas, Lahijani Babak Vosoughi, Herzig Hans Peter, Rockstuhl Carsten, Kim Myun-Sik
1Institute of Theoretical Solid State Physics, Karlsruhe Institute of Technology, 76131 Karlsruhe, Germany.
2Institute of Nanotechnology, Karlsruhe Institute of Technology, 76344 Eggenstein-Leopoldshafen, Germany.
Light Sci Appl. 2018 Dec 12;7:104. doi: 10.1038/s41377-018-0106-x. eCollection 2018.
Bloch surface waves (BSWs) are sustained at the interface of a suitably designed one-dimensional (1D) dielectric photonic crystal and an ambient material. The elements that control the propagation of BSWs are defined by a spatially structured device layer on top of the 1D photonic crystal that locally changes the effective index of the BSW. An example of such an element is a focusing device that squeezes an incident BSW into a tiny space. However, the ability to focus BSWs is limited since the index contrast achievable with the device layer is usually only on the order of Δ≈0.1 for practical reasons. Conventional elements, e.g., discs or triangles, which rely on a photonic nanojet to focus BSWs, operate insufficiently at such a low index contrast. To solve this problem, we utilize an inverse photonic design strategy to attain functional elements that focus BSWs efficiently into spatial domains slightly smaller than half the wavelength. Selected examples of such functional elements are fabricated. Their ability to focus BSWs is experimentally verified by measuring the field distributions with a scanning near-field optical microscope. Our focusing elements are promising ingredients for a future generation of integrated photonic devices that rely on BSWs, e.g., to carry information, or lab-on-chip devices for specific sensing applications.
布洛赫表面波(BSWs)在经过适当设计的一维(1D)介电光子晶体与环境材料的界面处得以维持。控制BSWs传播的元件由位于1D光子晶体顶部的空间结构化器件层定义,该器件层会局部改变BSW的有效折射率。这种元件的一个例子是聚焦器件,它能将入射的BSW压缩到一个微小的空间中。然而,聚焦BSWs的能力是有限的,因为出于实际原因,器件层可实现的折射率对比度通常仅在Δ≈0.1的量级。依靠光子纳米射流来聚焦BSWs的传统元件,如圆盘或三角形,在如此低的折射率对比度下工作效率不高。为了解决这个问题,我们采用逆向光子设计策略来获得能将BSWs高效聚焦到略小于波长一半的空间域中的功能元件。制造了此类功能元件的选定示例。通过使用扫描近场光学显微镜测量场分布,实验验证了它们聚焦BSWs的能力。我们的聚焦元件是未来一代依赖BSWs的集成光子器件(例如用于承载信息)或用于特定传感应用的芯片实验室器件的有前景的组成部分。