Modeling four-dimensional metamaterials: a T-matrix approach to describe time-varying metasurfaces

  • Garg P
  • Lamprianidis A
  • Beutel D
  • et al.
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Abstract

Exploring the interaction of light with materials periodically structured in space and time is intellectually rewarding and, simultaneously, a computational challenge. Appropriate computational tools are urgently needed to explore how such upcoming photonic materials can control light on demand. Here, we introduce a semi-analytical approach based on the transition matrix (also known as T-matrix) to analyze the optical response of a spatiotemporal metasurface. The metasurface consists of a periodic arrangement of time-varying scattering particles. In our approach, we depart from an individual scatterer’s T-matrix to construct the effective T-matrix of the metasurface. From that effective T-matrix, all observable properties can reliably be predicted. We verify our semi-analytical approach with full-wave numerical simulations. We demonstrate a speed-up with our approach by a factor of more than 500 compared to a finite-element simulation. Finally, we exemplify our approach by studying the effect of time modulation on a Huygens’ metasurface and discuss some emerging observable features.

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Garg, P., Lamprianidis, A. G., Beutel, D., Karamanos, T., Verfürth, B., & Rockstuhl, C. (2022). Modeling four-dimensional metamaterials: a T-matrix approach to describe time-varying metasurfaces. Optics Express, 30(25), 45832. https://doi.org/10.1364/oe.476035

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