<p>Topological protection in photonic structures enables robust unidirectional propagation immune to structural disorder<sup><CitationRef AdditionalCitationIDS="CR2 CR3 CR4 CR5 CR6 CR7 CR8 CR9 CR10 CR11 CR12 CR13 CR14 CR15 CR16 CR17 CR18 CR19" CitationID="CR1">1</CitationRef>–<CitationRef CitationID="CR20">20</CitationRef></sup>. 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 footprint<sup><CitationRef AdditionalCitationIDS="CR22 CR23 CR24" CitationID="CR21">21</CitationRef>–<CitationRef CitationID="CR25">25</CitationRef></sup>. 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)<sup><CitationRef CitationID="CR26">26</CitationRef>,<CitationRef CitationID="CR27">27</CitationRef></sup> 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.</p>

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Insulator-free topological photonic multi-lane highways

  • Xiaohan Cui,
  • Ruo-Yang Zhang,
  • Mudi Wang,
  • Zi-Xuan Gao,
  • Xiao-Dong Chen,
  • Zhao-Qing Zhang,
  • Yun Lai,
  • C. T. Chan

摘要

Topological protection in photonic structures enables robust unidirectional propagation immune to structural disorder120. 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 footprint2125. 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.