Author:
Dudek Michał,Kowerdziej Rafał,Pianelli Alessandro,Parka Janusz
Abstract
AbstractGraphene-based hyperbolic metamaterials provide a unique scaffold for designing nanophotonic devices with active functionalities. In this work, we have theoretically demonstrated that the characteristics of a polarization-dependent tunable hyperbolic microcavity in the mid-infrared frequencies could be realized by modulating the thickness of the dielectric layers, and thus breaking periodicity in a graphene-based hyperbolic metamaterial stack. Transmission of the tunable microcavity shows a Fabry–Perot resonant mode with a Q-factor > 20, and a sixfold local enhancement of electric field intensity. It was found that by varying the gating voltage of graphene from 2 to 8 V, the device could be self-regulated with respect to both the intensity (up to 30%) and spectrum (up to 2.1 µm). In addition, the switching of the device was considered over a wide range of incident angles for both the transverse electric and transverse magnetic modes. Finally, numerical analysis indicated that a topological transition between elliptic and type II hyperbolic dispersion could be actively switched. The proposed scheme represents a remarkably versatile platform for the mid-infrared wave manipulation and may find applications in many multi-functional architectures, including ultra-sensitive filters, low-threshold lasers, and photonic chips.
Funder
Narodowe Centrum Badań i Rozwoju
Publisher
Springer Science and Business Media LLC
Reference55 articles.
1. Shadrivov, I. V., Lapine, M. & Kivshar, Y. S. Nonlinear, Tunable and Active Metamaterials. Springer Series in Materials Science (Springer, Berlin, 2015).
2. Tong, X. C. Functional Metamaterials and Metadevices. Springer Series in Materials Science (Springer, Berlin, 2018).
3. Kowerdziej, R., Olifierczuk, M. & Parka, J. Thermally induced tunability of terahertz metamaterial by using a specially designed nematic liquid crystal mixture. Opt. Express 26, 2443–2452 (2018).
4. Kowerdziej, R., Stanczyk, T. & Parka, J. Electromagnetic simulations of tunable terahertz metamaterial infiltrated with highly birefringent nematic liquid crystal. Liq. Cryst. 42, 430–434 (2015).
5. Ou, J. Y., Plum, E., Zhang, J. & Zheludev, N. I. An electromechanically reconfigurable plasmonic metamaterial operating in the near-infrared. Nat. Nanotechnol. 8, 252–255 (2013).
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