Methodology for Topological Interface Engineering in 2D Photonic Crystals
Ond\v{r}ej Nov\'ak, Martin Veis, Gervasi Herranz

TL;DR
This paper introduces a new methodology for designing topological interfaces in 2D photonic crystals, enabling robust light control with potential applications in telecommunications.
Contribution
It presents an iterative band connection algorithm and a general framework for band symmetry recognition, advancing the design of topological photonic structures.
Findings
Successful design of topological interfaces with tailored dispersions
Identification of trade-offs between bandgap size and flatness
Enhanced unidirectional energy transport in designed structures
Abstract
Topological photonics provides a robust and flexible platform for controlling light, enabling functionalities such as backscattering-immune edge transport and slow-light propagation. In this work, we design and characterize photonic topological interfaces in two-dimensional photonic crystals. We introduce an iterative band connection algorithm that preserves mode symmetry and present a general framework for band symmetry recognition, essential for identifying Z2 topological phases. Design strategies for unit cell geometries are developed to achieve targeted band inversions, overlapping bandgaps, and tailored dispersions. Furthermore, the approach can be readily adapted to specific material platforms and operating wavelengths, including the telecommunication range, by appropriately scaling the lattice parameter as long as absorption remains low. We investigate the trade-off between…
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Taxonomy
TopicsTopological Materials and Phenomena · Photonic Crystals and Applications · Metamaterials and Metasurfaces Applications
