Du Jingshan S, Cherqui Charles, Ueltschi Tyler W, Wahl Carolin B, Bourgeois Marc, Van Duyne Richard P, Schatz George C, Dravid Vinayak P, Mirkin Chad A
Department of Materials Science and Engineering, Northwestern University, Evanston, IL 60208, USA.
International Institute for Nanotechnology, Northwestern University, Evanston, IL 60208, USA.
Sci Adv. 2023 Dec 22;9(51):eadj6129. doi: 10.1126/sciadv.adj6129.
Coupling plasmonic and functional materials provides a promising way to generate multifunctional structures. However, finding plasmonic nanomaterials and elucidating the roles of various geometric and dielectric configurations are tedious. This work describes a combinatorial approach to rapidly exploring and identifying plasmonic heteronanomaterials. Symmetry-broken noble/non-noble metal particle heterojunctions (100 nanometers) were synthesized on multiwindow silicon chips with silicon nitride membranes. The metal types and the interface locations were controlled to establish a nanoparticle library, where the particle morphology and scattering color can be rapidly screened. By correlating structural data with near- and far-field single-particle spectroscopy data, we found that certain low-energy plasmonic modes could be supported across the heterointerface, while others are localized. Furthermore, we found a series of triangular heteronanoplates stabilized by epitaxial Moiré superlattices, which show strong plasmonic responses despite largely comprising a lossy metal (70 atomic %). These architectures can become the basis for multifunctional and cost-effective plasmonic devices.
将等离子体材料与功能材料相结合为生成多功能结构提供了一条很有前景的途径。然而,寻找等离子体纳米材料并阐明各种几何和介电构型的作用是很繁琐的。这项工作描述了一种用于快速探索和识别等离子体异质纳米材料的组合方法。在带有氮化硅膜的多窗口硅芯片上合成了对称性破缺的贵金属/非贵金属颗粒异质结(约100纳米)。控制金属类型和界面位置以建立一个纳米颗粒库,在其中可以快速筛选颗粒形态和散射颜色。通过将结构数据与近场和远场单颗粒光谱数据相关联,我们发现某些低能等离子体模式可以在异质界面上得到支持,而其他模式则是局域化的。此外,我们发现了一系列由外延莫尔超晶格稳定的三角形异质纳米片,尽管其主要由一种损耗金属(约70原子%)组成,但仍表现出强烈的等离子体响应。这些结构可以成为多功能且经济高效的等离子体器件的基础。