Robust chirality via merging accidental BICs with net zero topological charge
作者:Hui Hu, Chaobiao Zhou, Yukang Zhang, Meng-Xia Hu, Juntian Peng, Huawei Tang, Liang Huang, Jianlong Liu, Chunying Guan, Z. Q. Zhu, Xiaoshuang Chen, Wei Lu, xiangping Li, Zi‐Lan Deng, Guanhai Li, Jinhui Shi, Cheng‐Wei Qiu · 发表于:eLight · 年份:2026 · DOI:10.1186/s43593-026-00126-z · 被引用次数:29 · 研究领域:Metamaterials and Metasurfaces Applications、Plasmonic and Surface Plasmon Research、Topological Materials and Phenomena
Abstract Chiral metasurfaces leveraging bound states in the continuum (BICs) offer a powerful route for enhancing light–matter interactions. However, existing quasi-BIC architectures typically face a fundamental trade-off between high quality (Q) factors and wide-angle chiral operation. Most designs confine strong circular dichroism (CD) to isolated points in momentum space (k-space) and often rely on intricate three-dimensional (3D) meta-atoms, rendering them highly sensitive to fabrication imperfections and angular misalignment. Here, we experimentally realize a planar dielectric metasurface that supports a wide k-domain chirality arising from accidental BICs with a net zero-topological-charge (ZTC). By lifting a Dirac-type degeneracy through controlled in-plane and out-of-plane symmetry breaking, we induce a deterministic topological evolution in which the same-handed circularly polarized (C) points migrate toward and accumulate near the Γ point, while the opposite-handed singularities annihilate or shift to higher k-space. This mechanism delivers record-level performance—an ultrahigh Q-factor (~ 10 4 ), near-unity linear and nonlinear CD (0.99/0.999), and robust angular coverage (| k x P /2π, k y P /2π|< 0.06)—all within a fabrication-friendly, single-layer dielectric platform. These results establish a new regime for chiral photonics, unifying high chiral purity, angular robustness, and topological stability in a scalable planar architecture.