Zhang Di, Misra Shikhar, Jian Jie, Lu Ping, Li Leigang, Wissel Ashley, Zhang Xinghang, Wang Haiyan
School of Materials Engineering, Purdue University, West Lafayette, Indiana 47907, United States.
Sandia National Laboratories, Albuquerque, New Mexico 87185, United States.
ACS Appl Mater Interfaces. 2021 Feb 3;13(4):5390-5398. doi: 10.1021/acsami.0c19108. Epub 2021 Jan 19.
Metallic plasmonic hybrid nanostructures have attracted enormous research interest due to the combined physical properties coming from different material components and the broad range of applications in nanophotonic and electronic devices. However, the high loss and narrow range of property tunability of the metallic hybrid materials have limited their practical applications. Here, a metallic alloy-based self-assembled plasmonic hybrid nanostructure, i.e., a BaTiO-AuAg (BTO) vertically aligned nanocomposite, has been integrated by a templated growth method for low-loss plasmonic systems. Comprehensive microstructural characterizations including high-resolution scanning transmission electron microscopy (HRSTEM), energy-dispersive X-ray spectroscopy (EDS), and three-dimensional (3D) electron tomography demonstrate the formation of an ordered "nano-domino-like" morphology with AuAg nanopillars as cylindrical cores and BTO as square shells. By comparing with the BTO-Au hybrid thin film, the BTO-AuAg alloyed film exhibits much broader plasmon resonance, hyperbolic dispersion, low-loss, and thermally robust features in the UV-vis-NIR wavelength region. This study provides a feasible platform for a complex alloyed plasmonic hybrid material design with low-loss and highly tunable optical properties toward all-optical integrated devices.
金属等离子体混合纳米结构因其不同材料组分的综合物理性质以及在纳米光子和电子器件中的广泛应用而引起了巨大的研究兴趣。然而,金属混合材料的高损耗和窄的性质可调谐范围限制了它们的实际应用。在此,通过模板生长法制备了一种基于金属合金的自组装等离子体混合纳米结构,即BaTiO-AuAg(BTO)垂直排列的纳米复合材料,用于低损耗等离子体系统。包括高分辨率扫描透射电子显微镜(HRSTEM)、能量色散X射线光谱(EDS)和三维(3D)电子断层扫描在内的综合微观结构表征表明,形成了一种有序的“纳米多米诺状”形态,其中AuAg纳米柱为圆柱状核心,BTO为方形壳层。与BTO-Au混合薄膜相比,BTO-AuAg合金薄膜在紫外-可见-近红外波长区域表现出更宽的等离子体共振、双曲线色散、低损耗和热稳定性强的特性。这项研究为具有低损耗和高度可调光学性质的复杂合金等离子体混合材料设计提供了一个可行的平台,用于全光集成器件。