Yang Shun-Hui, Cooper Michael L, Bandaru Prabhakar R, Mookherjea Shayan
Department of Mechanical and Aerospace Engineering, University of California, San Diego, Gilman Drive, La Jolla, California 92093-0407, USA.
Opt Express. 2008 May 26;16(11):8306-16. doi: 10.1364/oe.16.008306.
We demonstrate record giant birefringence, nearly twice as large as has previously been achieved (Delta n(group) = 1.5 over more than 60 nm of bandwidth near lambda= 1550 nm) using a multi-slotted silicon nanophotonic waveguide. The birefringence is optimized by the use of materials with high refractive index contrast to create a compact single-mode waveguide, and the etching of deeply sub-wavelength channels within the waveguide, which are strongly coupled in the near field and separated by narrow air channels of optimum lateral width. When used as a polarization-selective delay element, the delay-bandwidth product per unit length is 46.6/mm over a bandwidth of 8.74 T Hz. We also design and demonstrate mode shaping of both the TE and TM polarizations to achieve near-identical coupling to a macroscopic external object, such as a lensed fiber or detector.
我们展示了创纪录的巨双折射,其大小几乎是此前所达到的两倍(在波长λ = 1550 nm附近超过60 nm的带宽范围内,群折射率差Δn(group) = 1.5),这是通过使用多槽硅纳米光子波导实现的。通过使用具有高折射率对比度的材料来创建紧凑的单模波导,并在波导内蚀刻深度亚波长通道,这些通道在近场中强烈耦合且由具有最佳横向宽度的窄空气通道隔开,从而优化了双折射。当用作偏振选择延迟元件时,在8.74 THz的带宽上,每单位长度的延迟带宽积为46.6/mm。我们还设计并展示了TE和TM偏振的模式整形,以实现与宏观外部物体(如透镜光纤或探测器)几乎相同的耦合。