Johns Ben
Department of Chemical Sciences, Indian Institute of Science Education and Research, Mohali, 140306, India.
Nanophotonics. 2023 Jun 21;12(16):3301-3312. doi: 10.1515/nanoph-2023-0215. eCollection 2023 Aug.
Epsilon-near-zero (ENZ) materials have recently emerged as a promising platform for infrared nanophotonics. A significant challenge in the design of ENZ-based optics is to control the dispersion of ENZ modes that otherwise have a flat profile near the ENZ frequency. Strong coupling with an optical cavity is a promising approach to ENZ dispersion engineering, which however has limitations due to the lack of tunability or nanofabrication demands of the cavity employed. Here, we theoretically and numerically show that much of the limitations of previous approaches can be overcome by strongly coupling the ENZ mode to an unpatterned Fabry-Perot cavity. We demonstrate this unprecedented ENZ dispersion control in coupled cavities by designing tunable infrared polarizers that can absorb and reflect -polarized components, or vice versa, for almost any oblique angle of incidence, i.e. omnidirectional polarizers. The feasibility of active control is also demonstrated using a phase change material within the cavity, which predicts dynamic switchability of polariton dispersions across multiple resonant levels at mid-infrared wavelengths. These results are expected to advance the current understanding of strongly coupled ENZ interactions and demonstrate their potential in tailoring dispersions for active and passive control of light.
近零介电常数(ENZ)材料最近已成为红外纳米光子学的一个有前景的平台。基于ENZ的光学器件设计中的一个重大挑战是控制ENZ模式的色散,否则这些模式在ENZ频率附近具有平坦的分布。与光学腔的强耦合是ENZ色散工程的一种有前景的方法,然而由于所采用的腔缺乏可调性或纳米制造要求,这种方法存在局限性。在这里,我们通过理论和数值证明,通过将ENZ模式与无图案的法布里 - 珀罗腔强耦合,可以克服先前方法的许多局限性。我们通过设计可调谐红外偏振器来展示这种在耦合腔中前所未有的ENZ色散控制,该偏振器几乎可以在任何入射角下吸收和反射 - 偏振分量,反之亦然,即全向偏振器。利用腔内的相变材料也证明了主动控制的可行性,这预测了在中红外波长下极化激元色散在多个共振能级上的动态可切换性。这些结果有望推动当前对强耦合ENZ相互作用的理解,并展示它们在定制色散以实现光的主动和被动控制方面的潜力。