Metamaterials Laboratory, Northeastern University, Electrical and Computer Engineering Department, Boston, MA, 02115, USA.
Sci Rep. 2017 Aug 30;7(1):10055. doi: 10.1038/s41598-017-09523-4.
We present novel design approaches for metasurfaces and metamaterials with electrical tunability offering real-time manipulation of light and serving as multifunctional devices in near-infrared frequency regime (at the specific wavelength of 1.55 μm). For this purpose, we integrate indium-tin-oxide (ITO) as a tunable electro-optical material into multimaterial nanowires with metal-oxide-semiconductor and metal-insulator-metal configurations. In particular, an active metasurface operating in the transmission mode is designed which allows for modulation of the transmitted light phase over 280 degrees. This large phase modulation is afforded in the cost of low transmission efficiency. We demonstrate the use of such active metasurfaces for tunable bending and focusing in free-space. Moreover, we investigate the implementation of this material in deeply subwavelength multimaterial nanowires, which can yield strong variations in the effective refractive index by the virtue of internal homogenization enabling tunability of the performance in gradient refractive index metamaterials. In the theoretical modeling of these structures, we adopt a hierarchical multiscale approach by linking drift-diffusion transport model with the electromagnetic model which rigorously characterizes the electro-optical effects.
我们提出了具有电可调谐性的超表面和超材料的新颖设计方法,能够实时操控光,并在近红外频率范围内(在特定的 1.55μm 波长处)作为多功能器件使用。为此,我们将氧化铟锡(ITO)作为可调谐电光材料集成到具有金属氧化物半导体和金属-绝缘体-金属结构的多材料纳米线中。具体来说,我们设计了一种工作在透射模式下的有源超表面,能够实现超过 280 度的透射光相位调制。这种大的相位调制是以低传输效率为代价的。我们展示了这种有源超表面在自由空间中用于可调谐弯曲和聚焦的应用。此外,我们研究了这种材料在深亚波长多材料纳米线中的实现,通过内部均匀化可以产生有效折射率的强烈变化,从而实现梯度折射率超材料性能的可调谐性。在这些结构的理论建模中,我们采用了分层多尺度方法,将漂移扩散传输模型与严格描述电光效应的电磁模型联系起来。