Wang Xuejing, Jian Jie, Wang Haohan, Liu Juncheng, Pachaury Yash, Lu Ping, Rutherford Bethany X, Gao Xingyao, Xu Xiaoshan, El-Azab Anter, Zhang Xinghang, Wang Haiyan
School of Materials Engineering, Purdue University, West Lafayette, IN, 47907, USA.
Department of Physics and Astronomy, University of Nebraska-Lincoln, Lincoln, NE, 68588, USA.
Small. 2021 Feb;17(5):e2007222. doi: 10.1002/smll.202007222. Epub 2021 Jan 15.
Magneto-optical (MO) coupling incorporates photon-induced change of magnetic polarization that can be adopted in ultrafast switching, optical isolators, mode convertors, and optical data storage components for advanced optical integrated circuits. However, integrating plasmonic, magnetic, and dielectric properties in one single material system poses challenges since one natural material can hardly possess all these functionalities. Here, co-deposition of a three-phase heterostructure composed of a durable conductive nitride matrix with embedded core-shell vertically aligned nanopillars, is demonstrated. The unique coupling between ferromagnetic NiO core and atomically sharp plasmonic Au shell enables strong MO activity out-of-plane at room temperature. Further, a template growth process is applied, which significantly enhances the ordering of the nanopillar array. The ordered nanostructure offers two schemes of spin polarization which result in stronger antisymmetry of Kerr rotation. The presented complex hybrid metamaterial platform with strong magnetic and optical anisotropies is promising for tunable and modulated all-optical-based nanodevices.
磁光(MO)耦合包含光子诱导的磁极化变化,可用于超快开关、光隔离器、模式转换器以及用于先进光集成电路的光数据存储组件。然而,在单一材料系统中集成等离子体、磁性和介电特性面临挑战,因为一种天然材料很难具备所有这些功能。在此,展示了由具有嵌入式核壳垂直排列纳米柱的耐用导电氮化物基体组成的三相异质结构的共沉积。铁磁NiO核与原子级尖锐的等离子体Au壳之间的独特耦合在室温下实现了面外强MO活性。此外,应用了模板生长工艺,这显著增强了纳米柱阵列的有序性。有序纳米结构提供了两种自旋极化方案,导致克尔旋转的更强反对称性。所呈现的具有强磁光各向异性的复杂混合超材料平台有望用于可调谐和调制的全光基纳米器件。