Strong and Broadband Pure Optical Activity in 3D Printed THz Chiral Metamaterials

Author:

Katsantonis Ioannis12,Manousidaki Maria1,Koulouklidis Anastasios D.13,Daskalaki Christina1,Spanos Ioannis14,Kerantzopoulos Constantinos13,Tasolamprou Anna C.15,Soukoulis Costas M.16,Economou Eleftherios N.13,Tzortzakis Stelios12,Farsari Maria12ORCID,Kafesaki Maria12

Affiliation:

1. Institute of Electronic Structure and Laser Foundation for Research and Technology‐Hellas Heraklion Crete 70013 Greece

2. Department of Materials Science and Technology University of Crete Heraklion Crete 70013 Greece

3. Department of Physics University of Crete Heraklion Crete 70013 Greece

4. Department of Engineering Science University of Oxford Oxford OX1 4BH UK

5. Section of Electronic Physics and Systems Department of Physics National and Kapodistrian University of Athens Athens 15784 Greece

6. Ames Laboratory, U. S. Department of Energy and Department of Physics and Astronomy Iowa State University Ames Iowa 50011 USA

Abstract

AbstractOptical activity (polarization rotation of light) is one of the most desired features of chiral media, as it is important for many polarization‐related applications. However, in the THz region, chiral media with strong optical activity are not available in nature. Here, a chiral metamaterial (CMM) structure composed of pairs of vertical U‐shape resonators of “twisted” arms is studied, and it is revealed that it demonstrates large pure optical activity (i.e., optical activity associated with negligible transmitted wave ellipticity) in the low THz regime. The experimental data show polarization rotation up to 25° for an unmatched bandwidth of 1 THz (relative bandwidth 80%), from a 130 µm‐thickness structure, while theoretical optimizations show that the rotation can reach 45°. The enhanced chiral response of the structure is analyzed through an equivalent RLC circuit model, which also provides simple optimization rules for the enhancement of its chiral response. The proposed chiral design allows for easy fabrication via direct laser writing (DLW) and electroless metal plating, making the associated structures suitable candidates for polarization control applications.

Funder

Horizon 2020 Framework Programme

Publisher

Wiley

Subject

Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials

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