Matthaiakakis N, Mizuta H, Charlton M D B
Department of Electronics and Computer Science, University of Southampton, Southampton, SO17 1BJ, United Kingdom.
School of Materials Science, Japan Advanced Institute of Science and Technology, Ishikawa 923-1292, Japan.
Sci Rep. 2016 Jun 9;6:27550. doi: 10.1038/srep27550.
An optical device configuration allowing efficient electrical tuning of surface plasmon wavelength and absorption in a suspended/conformal graphene film is reported. An underlying 2-dimensional array of inverted rectangular pyramids greatly enhances optical coupling to the graphene film. In contrast to devices utilising 1D grating or Kretchman prism coupling configurations, both s and p polarization can excite plasmons due to symmetry of the grating structure. Additionally, the excited high frequency plasmon mode has a wavelength independent of incident photon angle allowing multidirectional coupling. By combining analytical methods with Rigorous Coupled-Wave Analysis, absorption of plasmons is mapped over near infrared spectral range as a function of chemical potential. Strong control over both plasmon wavelength and strength is provided by an ionic gel gate configuration. 0.04eV change in chemical potential increases plasmon energy by 0.05 eV shifting plasmon wavelength towards the visible, and providing enhancement in plasmon absorption. Most importantly, plasmon excitation can be dynamically switched off by lowering the chemical potential and moving from the intra-band to the inter-band transition region. Ability to electrically tune plasmon properties can be utilized in applications such as on-chip light modulation, photonic logic gates, optical interconnect and sensing applications.
报道了一种光学器件配置,该配置能够对悬浮/共形石墨烯薄膜中的表面等离子体激元波长和吸收进行有效的电调谐。底部的二维倒置矩形金字塔阵列极大地增强了与石墨烯薄膜的光学耦合。与利用一维光栅或克雷奇曼棱镜耦合配置的器件不同,由于光栅结构的对称性,s偏振和p偏振都可以激发等离子体激元。此外,激发的高频等离子体激元模式的波长与入射光子角度无关,从而实现多向耦合。通过将解析方法与严格耦合波分析相结合,等离子体激元的吸收在近红外光谱范围内被映射为化学势的函数。离子凝胶栅极配置可对等离子体激元波长和强度进行强控制。化学势变化0.04eV会使等离子体激元能量增加0.05eV,使等离子体激元波长向可见光方向移动,并增强等离子体激元吸收。最重要的是,通过降低化学势并从带内跃迁到带间跃迁区域,可以动态关闭等离子体激元激发。电调谐等离子体激元特性的能力可用于诸如片上光调制、光子逻辑门、光互连和传感应用等领域。