English

Anti-reflection coating design for metallic terahertz meta-materials

Applied Physics 2024-04-11 v2 Other Condensed Matter

Abstract

We demonstrate a silicon-based, single-layer anti-reflection coating that suppresses the reflectivity of metals at near-infrared frequencies, enabling optical probing of nano-scale structures embedded in highly reflective surroundings. Our design does not affect the interaction of terahertz radiation with metallic structures that can be used to achieve terahertz near-field enhancement. We have verified the functionality of the design by calculating and measuring the reflectivity of both infrared and terahertz radiation from a silicon/gold double layer as a function of the silicon thickness. We have also fabricated the unit cell of a terahertz meta-material, a dipole antenna comprising two 20-nm thick extended gold plates separated by a 2 μ\mum gap, where the terahertz field is locally enhanced. We used the time-domain finite element method to demonstrate that such near-field enhancement is preserved in the presence of the anti-reflection coating. Finally, we performed magneto-optical Kerr effect measurements on a single 3-nm thick, 1-μ\mum wide magnetic wire placed in the gap of such a dipole antenna. The wire only occupies 2\% of the area probed by the laser beam, but its magneto-optical response can be clearly detected. Our design paves the way for ultrafast time-resolved studies, using table-top femtosecond near-infrared lasers, of dynamics in nano-structures driven by strong terahertz radiation.

Keywords

Cite

@article{arxiv.1711.05670,
  title  = {Anti-reflection coating design for metallic terahertz meta-materials},
  author = {M. Pancaldi and R. Freeman and M. Hudl and M. C. Hoffmann and S. Urazhdin and P. Vavassori and S. Bonetti},
  journal= {arXiv preprint arXiv:1711.05670},
  year   = {2024}
}

Comments

10 pages, 5 figures

R2 v1 2026-06-22T22:47:05.629Z