Lai Hua-Shan, Zhou Yan-Chen, Sun Ze-Qun, He Cheng, Chen Yan-Feng
National Laboratory of Solid State Microstructures & Department of Materials Science and Engineering, Nanjing University, Nanjing, China.
Collaborative Innovation Center of Advanced Microstructures, Nanjing University, Nanjing, China.
Nat Commun. 2025 Apr 23;16(1):3826. doi: 10.1038/s41467-025-59214-2.
Axion insulators represent a unique class of magnetic topological phases, linking the two-dimensional quantum anomalous Hall effect to the magnetic higher-order phase of three-dimensional topological insulators. Within axion insulators, axion electrodynamics exhibits novel topological magneto-electric phenomena such as quantized Faraday and Kerr rotation and half-integer surface Hall response. However, among them, the chiral hinge state with non-reciprocal hinge transport as their essential hallmark has yet to be experimentally observed since it was predicted theoretically. Here we report the first photonic axion insulator based on a three-dimensional antiferromagnetic-like structure in microwave bands. Such an artificial magnetic lattice consists of bilayer square-lattice arrays of ferrites imposed with equal but opposite embedded magnets, simultaneously with inversion-symmetric interlayer couplings. By probing all twelve hinges and detecting all eight vertices of the photonic axion insulator, we directly map out the non-coplanar chiral hinge states and observe the non-reciprocal robust hinge transport. The different performances between odd- and even-layer axion insulators are also investigated. These results enrich the family of topological photonics and the controllable dimension of electromagnetic waves, opening up a photonic way to study rich magnetic topological phases that have already been proposed but are challenging to implement in solid-state materials.
轴子绝缘体代表了一类独特的磁拓扑相,将二维量子反常霍尔效应与三维拓扑绝缘体的磁高阶相联系起来。在轴子绝缘体内,轴子电动力学展现出新颖的拓扑磁电现象,如量子化的法拉第旋转和克尔旋转以及半整数表面霍尔响应。然而,其中以非互易铰链输运为本质特征的手性铰链态自理论预测以来尚未得到实验观测。在此,我们报道了首个基于微波波段三维反铁磁样结构的光子轴子绝缘体。这种人工磁晶格由施加了大小相等但方向相反的嵌入式磁体的双层铁氧体方晶格阵列组成,同时具有反演对称的层间耦合。通过探测光子轴子绝缘体的所有十二个铰链并检测其所有八个顶点,我们直接描绘出了非共面手性铰链态,并观测到了非互易的稳健铰链输运。我们还研究了奇数层和偶数层轴子绝缘体之间的不同性能。这些结果丰富了拓扑光子学家族以及电磁波的可控维度,开辟了一条光子学途径来研究已被提出但在固态材料中难以实现的丰富磁拓扑相。