Ming Hsieh Department of Electrical Engineering, University of Southern California , Los Angeles, California 90089, United States.
Department of Physics and Astronomy, University of Southern California , Los Angeles, California 90089, United States.
ACS Nano. 2017 Jun 27;11(6):5836-5843. doi: 10.1021/acsnano.7b01468. Epub 2017 Jun 14.
Gap plasmonic nanostructures are of great interest due to their ability to concentrate light into small volumes. Theoretical studies, considering quantum mechanical effects, have predicted the optimal spatial gap between adjacent nanoparticles to be in the subnanometer regime in order to achieve the strongest possible field enhancement. Here, we present a technology to fabricate gap plasmonic structures with subnanometer resolution, high reliability, and high throughput using collapsible nanofingers. This approach enables us to systematically investigate the effects of gap size and tunneling barrier height. The experimental results are consistent with previous findings as well as with a straightforward theoretical model that is presented here.
由于能够将光集中到小体积中,因此间隙等离子体纳米结构引起了极大的关注。理论研究考虑了量子力学效应,预测了相邻纳米粒子之间的最佳空间间隙要在亚纳米范围内,以实现最强的可能场增强。在这里,我们提出了一种使用可折叠纳米指制造具有亚纳米分辨率,高可靠性和高通量的间隙等离子体结构的技术。这种方法使我们能够系统地研究间隙尺寸和隧道势垒高度的影响。实验结果与先前的发现以及本文提出的简单理论模型一致。