Active Chiral Plasmonics.

Nano Lett

†4th Physics Institute and Research Center SCoPE, University of Stuttgart, 70550, Stuttgart, Germany.

Published: July 2015

AI Article Synopsis

  • The study highlights the potential of using chiral metamaterials for advanced applications like polarization engineering and imaging devices, but traditional methods are complex and slow.
  • Researchers used a phase change material (GST-326) to create a tunable mid-infrared plasmonic chiral metamaterial that can switch between left-handed and right-handed states without needing complicated mechanical changes.
  • This innovative approach enables fast switching and could lead to more efficient optical devices that operate at ultrafast speeds.

Article Abstract

Active control over the handedness of a chiral metamaterial has the potential to serve as key element for highly integrated polarization engineering approaches, polarization sensitive imaging devices, and stereo display technologies. However, this is hard to achieve as it seemingly involves the reconfiguration of the metamolecule from a left-handed into a right-handed enantiomer and vice versa. This type of mechanical actuation is intricate and usually neither monolithically realizable nor viable for high-speed applications. Here, enabled by the phase change material Ge3Sb2Te6 (GST-326), we demonstrate a tunable and switchable mid-infrared plasmonic chiral metamaterial in a proof-of-concept experiment. A large tunability range of the circular dichroism response from λ = 4.15 to 4.90 μm is achieved, and we experimentally demonstrate that the combination of a passive bias-type chiral layer with the active chiral metamaterial allows for switchable chirality, that is, the reversal of the circular dichroism sign, in a fully planar, layered design without the need for geometrical reconfiguration. Because phase change materials can be electrically and optically switched, our designs may open up a path for highly integrated mid-IR polarization engineering devices that can be modulated on ultrafast time scales.

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Source
http://dx.doi.org/10.1021/nl5042325DOI Listing

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