Oxygen Vacancy Controlled Hyperbolic Metamaterial Based on Indium Tin Oxide (ITO) Nanotubes with Switchable Optical Properties

Author:

Herzog Thomas12,Habibpourmoghadam Atefeh234ORCID,Locmelis Sonja12,Calà Lesina Antonio234ORCID,Polarz Sebastian12ORCID

Affiliation:

1. Institute for Inorganic Chemistry Leibniz University Hannover 30167 Hannover Germany

2. Cluster of Excellence PhoenixD Leibniz University Hannover 30167 Hannover Germany

3. Institute of Transport and Automation Technology Leibniz University Hannover 30823 Garbsen Germany

4. Hannover Centre for Optical Technologies Leibniz University Hannover 30167 Hannover Germany

Abstract

AbstractNanostructured metamaterials can offer optical properties beyond what is achievable in conventional media, such as negative refraction or sub‐wavelength imaging. Due to their structural anisotropy, the class of high aspect ratio metamaterials is of interest for the possibility of achieving hyperbolic optical properties, i.e., both metallic and dielectric behavior based on the excitation direction. Although investigated numerically, the fabrication of tailor‐made metamaterials is complex or often beyond the reach of current technology. For wire metamaterials composed of aligned metallic nanowires in a dielectric matrix, since the free carrier concentration in metals is fixed, light‐matter interaction cannot be adjusted after fabrication. Here, metamaterials based on plasmonic ITO nanotubes with controllable hyperbolic response are introduced. The synthesis is achieved by a template‐based liquid‐phase technique. The tuning mechanism is based on controlling the carrier density in ITO via oxygen vacancy concentration. The process is reversible, the photonic features are activated by creating oxygen vacancies and can be switched off by filling them up again. Further, it is shown that the carrier concentration can also be controlled via a static electric field. Optical simulations support the experimental findings and highlight the parameters that determine the optical response of the metamaterial.

Funder

Gottfried Wilhelm Leibniz Universität Hannover

Deutsche Forschungsgemeinschaft

Publisher

Wiley

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