Topological protection in photonic structures enables robust unidirectional propagation immune to structural disorder1,2,3,4,5,6,7,8,9,10,11,12,13,14,15,16,17,18,19,20. However, conventional implementations obtain this protection from topological-insulator domains whose interfaces host narrow guiding channels, leaving much of the insulating bulk inactive for transport. This imposes a fundamental trade-off between topological robustness and spatial footprint21,22,23,24,25. Here we introduce an insulator-free topological waveguide architecture that eliminates this trade-off, enabling multi-lane unidirectional light guiding with both 100% spatial utilization efficiency and topological protection. By strategically combining time-reversal and inversion-symmetry breaking in gyromagnetic honeycomb photonic crystals (PCs), we achieve four inequivalent photonic valley half-semimetals (PVHSMs)26,27 at distinct critical transition boundaries between trivial and Chern insulator phases. We arrange these four structures in a parallel, cyclic configuration, such that each domain simultaneously functions as a valley-selective waveguide and a topological barrier for the other valley in adjacent domains, circumventing the need for further topological insulating layers. Our experimental and theoretical results demonstrate that this multi-lane configuration transforms conventional edge states into densely packed, large-area one-way modes. These modes exhibit alternating unidirectionality across the four domains while maintaining robustness even under arbitrary sharp bends and pronounced shape variations. This work exemplifies a design strategy for ultracompact topological photonic circuits, with potential for high-density integrated optics.
Insulator-free topological photonic multi-lane highways
Why This Matters
This breakthrough in insulator-free topological photonic waveguides offers a highly efficient and compact way to route light with robust, unidirectional propagation. By eliminating the need for insulating domains, it significantly enhances the spatial utilization and scalability of topological photonic circuits, paving the way for more compact, high-density integrated optical systems. This advancement could revolutionize photonic device design, improving performance and miniaturization in the tech industry and consumer electronics.
Key Takeaways
- Enables multi-lane, unidirectional light guiding with full spatial efficiency.
- Eliminates the trade-off between topological protection and spatial footprint.
- Facilitates ultracompact, high-density integrated photonic circuits.
Explore topics:
topological photonics
gyromagnetic honeycomb
photonic crystals
valley half-semimetals
topological waveguide
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