Parappurath Nikhil, Alpeggiani Filippo, Kuipers L, Verhagen Ewold
Center for Nanophotonics, AMOLF, Science Park 104, 1098 XG Amsterdam, Netherlands.
Department of Quantum Nanoscience, Kavli Institute of Nanoscience, Delft University of Technology, 2600 GA Delft, Netherlands.
Sci Adv. 2020 Mar 6;6(10):eaaw4137. doi: 10.1126/sciadv.aaw4137. eCollection 2020 Mar.
Topological protection in photonics offers new prospects for guiding and manipulating classical and quantum information. The mechanism of spin-orbit coupling promises the emergence of edge states that are helical, exhibiting unidirectional propagation that is topologically protected against back scattering. We directly observe the topological states of a photonic analog of electronic materials exhibiting the quantum spin Hall effect, living at the interface between two silicon photonic crystals with different topological order. Through the far-field radiation that is inherent to the states' existence, we characterize their properties, including linear dispersion and low loss. We find that the edge state pseudospin is encoded in unique circular far-field polarization and linked to unidirectional propagation, thus revealing a signature of the underlying photonic spin-orbit coupling. We use this connection to selectively excite different edge states with polarized light and directly visualize their routing along sharp chiral waveguide junctions.
光子学中的拓扑保护为经典和量子信息的引导与操控提供了新的前景。自旋 - 轨道耦合机制有望产生螺旋状的边缘态,呈现出单向传播特性,且在拓扑上受到保护,不会发生背向散射。我们直接观测到了表现出量子自旋霍尔效应的电子材料的光子类似物的拓扑态,这些拓扑态存在于具有不同拓扑序的两个硅光子晶体的界面处。通过这些态存在所固有的远场辐射,我们表征了它们的特性,包括线性色散和低损耗。我们发现边缘态赝自旋编码在独特的圆偏振远场中,并与单向传播相关联,从而揭示了潜在光子自旋 - 轨道耦合的特征。我们利用这种关联,用偏振光选择性地激发不同的边缘态,并直接可视化它们沿着尖锐的手性波导结的路由。