Wang Chih-Feng, Krayev Andrey V, El-Khoury Patrick Z
Physical Sciences Division, Pacific Northwest National Laboratory, Richland, Washington 99352, United States.
Horiba Instruments, Inc., 359 Bel Marin Keys Blvd., Suite 18, Novato, California 94949, United States.
Nano Lett. 2023 Oct 11;23(19):9114-9118. doi: 10.1021/acs.nanolett.3c03028. Epub 2023 Sep 26.
Our knowledge of the electromagnetic fields that power modern nanoscale optical measurements, including (non)linear tip-enhanced Raman and photoluminescence, chiefly stems from numerical simulations. Aside from idealized in silico vs heterogeneous (nano)structures in the laboratory, challenges in quantitative descriptions of nanoscale light-matter interactions more generally stem from the very nature of the problem, which lies at the interface of classical and quantum theories. This is particularly the case in ultrahigh spatial resolution measurements that are sensitive to local optical field variations that take place on subnanometer length scales. This work approaches this challenge through extinction-based spectral nanoimaging experiments. We demonstrate <1 nm spatial resolution in hyperspectral extinction measurements that track spatially varying plasmon resonances. We describe the principles behind our experiments and highlight more general implications of our observations.
我们对为现代纳米级光学测量提供动力的电磁场的了解,包括(非)线性尖端增强拉曼光谱和光致发光,主要源于数值模拟。除了实验室中理想化的计算机模拟与异质(纳米)结构的对比之外,纳米级光与物质相互作用的定量描述面临的挑战更普遍地源于问题的本质,该问题处于经典理论和量子理论的交叉点。在对亚纳米长度尺度上发生的局部光场变化敏感的超高空间分辨率测量中尤其如此。这项工作通过基于消光的光谱纳米成像实验来应对这一挑战。我们在跟踪空间变化的等离子体共振的高光谱消光测量中展示了<1 nm的空间分辨率。我们描述了实验背后的原理,并强调了我们观察结果的更普遍意义。