Park Hyo-Seung, Park Jongkil, Kwak Joon Young, Hwang Gyu-Weon, Jeong Doo-Seok, Lee Kyeong-Seok
Center for Neuromorphic Engineering, Korea Institute of Science and Technology, Seoul, 02792, Korea.
Department of Materials Science and Engineering, Hanyang University, Seoul, 04763, Korea.
Sci Rep. 2021 Feb 4;11(1):3184. doi: 10.1038/s41598-021-82899-6.
A novel nano-plasmonic sensing platform based on vertical conductive bridge was suggested as an alternative geometry for taking full advantages of unique properties of conductive junction while substantially alleviating burdens in lithographic process. The effects of various geometrical parameters on the plasmonic properties were systematically investigated. Theoretical simulation on this structure demonstrates that the presence of vertical conductive bridge with smaller diameter sandwiched between two adjacent thin nanodiscs excites a bridged mode very similar to the charge transfer plasmon and exhibits a remarkable enhancement in the extinction efficiency and the sensitivity when the electric field of incident light is parallel to the conductive bridge. Furthermore, for the electric field perpendicular to the bridge, another interesting feature is observed that two magnetic resonance modes are excited symmetrically through open-gaps on both sides of the bridge together with strongly enhanced electric field intensity, which provides a very favorable environment as a surface enhanced Raman scattering substrate for fluid analysis. These results verify a great potential and versatility of our approach for use as a nanoplasmonic sensing platform. In addition, we demonstrated the feasibility of fabrication process of vertical conductive bridge and high tunability in controlling the bridge width.
一种基于垂直导电桥的新型纳米等离子体传感平台被提出来,作为一种替代几何结构,以便充分利用导电结的独特性质,同时大幅减轻光刻工艺的负担。系统地研究了各种几何参数对等离激元性质的影响。对该结构的理论模拟表明,夹在两个相邻薄纳米盘之间的较小直径垂直导电桥的存在激发了一种非常类似于电荷转移等离子体的桥接模式,并且当入射光的电场平行于导电桥时,消光效率和灵敏度有显著提高。此外,对于垂直于桥的电场,观察到另一个有趣的特征,即通过桥两侧的开放间隙对称地激发两个磁共振模式,同时电场强度强烈增强,这为作为用于流体分析的表面增强拉曼散射基底提供了非常有利的环境。这些结果验证了我们的方法作为纳米等离子体传感平台的巨大潜力和多功能性。此外,我们展示了垂直导电桥制造工艺的可行性以及在控制桥宽度方面的高可调性。