School of Electrical and Computer Engineering , ‡Department of Physics, and §Birck Nanotechnology Center, Purdue University , West Lafayette, Indiana 47907, United States.
Nano Lett. 2014 Jan 8;14(1):78-82. doi: 10.1021/nl403253c. Epub 2013 Dec 9.
Pauli blocking of interband transistions gives rise to tunable optical properties in single layer graphene (SLG). This effect is exploited in a graphene-nanoantenna hybrid device where Fano resonant plasmonic nanostructures are fabricated on top of a graphene sheet. The use of Fano resonant elements enhances the interaction of incident radiation with the graphene sheet and enables efficient electrical modulation of the plasmonic resonance. We observe electrically controlled damping in the Fano resonances occurring at approximately 2 μm, and the results are verified by full-wave 3D finite-element simulations. Our approach can be used for development of next generation of tunable plasmonic and hybrid nanophotonic devices.
带间跃迁的泡利阻塞会导致单层石墨烯 (SLG) 产生可调谐的光学性质。这种效应在石墨烯-纳米天线混合器件中得到了利用,在石墨烯片上制造了具有 Fano 共振的等离子体纳米结构。使用 Fano 共振元件增强了入射辐射与石墨烯片的相互作用,并实现了等离子体共振的高效电调制。我们观察到在大约 2 μm 处发生的 Fano 共振的电控制阻尼,结果通过全波 3D 有限元模拟得到验证。我们的方法可用于开发新一代可调谐等离子体和混合纳米光子器件。