Lee Eunsongyi, Seo In Cheol, Lim Sung Chan, Jeong Hoon Yeub, Jun Young Chul
Opt Express. 2016 Oct 31;24(22):25684-25696. doi: 10.1364/OE.24.025684.
We propose and analyze a scheme for active switching and spectral tuning of mid-infrared Fano resonances. We consider dielectric resonators made of semiconductor cylinder arrays and block pairs, and theoretically investigate their optical response change due to carrier generation. Owing to sharp optical resonances in these structures and large dielectric constant variations with carrier densities, the significant spectral tuning of Fano resonances is achievable. Furthermore, selective optical pumping in coupled semiconductor structures can even enable dynamic switching of Fano resonances. This leads to a drastic change in the scattering spectra as well as in the near-field intensity. We also observe a stark difference between Fano resonances in cylinder arrays and block pairs. To understand this unusual behavior, we adopt the two coupled oscillator model, and extract the relevant Fano resonance parameters that explain this difference. Our findings and in-depth analyses can be useful for molecular sensors and switching devices in the technologically important mid-infrared spectral region.
我们提出并分析了一种用于中红外法诺共振的主动切换和光谱调谐方案。我们考虑由半导体圆柱阵列和块状对制成的介质谐振器,并从理论上研究它们由于载流子产生而引起的光学响应变化。由于这些结构中的尖锐光学共振以及随载流子密度的大介电常数变化,可以实现法诺共振的显著光谱调谐。此外,在耦合半导体结构中的选择性光泵浦甚至可以实现法诺共振的动态切换。这导致散射光谱以及近场强度发生剧烈变化。我们还观察到圆柱阵列和块状对中法诺共振之间的明显差异。为了理解这种异常行为,我们采用双耦合振荡器模型,并提取解释这种差异的相关法诺共振参数。我们的发现和深入分析对于技术上重要的中红外光谱区域中的分子传感器和开关器件可能是有用的。