CIC biomaGUNE and CIBER-BBN , Paseo de Miramón 182 , Donostia-San Sebastián 20014 , Spain.
Materials Physics Center (CSIC-UPV/EHU) , and Donostia International Physics Center , Paseo Manuel de Lardizabal 5 , Donostia-San Sebastián 20018 , Spain.
ACS Nano. 2020 Jan 28;14(1):28-117. doi: 10.1021/acsnano.9b04224. Epub 2019 Oct 8.
The discovery of the enhancement of Raman scattering by molecules adsorbed on nanostructured metal surfaces is a landmark in the history of spectroscopic and analytical techniques. Significant experimental and theoretical effort has been directed toward understanding the surface-enhanced Raman scattering (SERS) effect and demonstrating its potential in various types of ultrasensitive sensing applications in a wide variety of fields. In the 45 years since its discovery, SERS has blossomed into a rich area of research and technology, but additional efforts are still needed before it can be routinely used analytically and in commercial products. In this Review, prominent authors from around the world joined together to summarize the state of the art in understanding and using SERS and to predict what can be expected in the near future in terms of research, applications, and technological development. This Review is dedicated to SERS pioneer and our coauthor, the late Prof. Richard Van Duyne, whom we lost during the preparation of this article.
分子在纳米结构金属表面上吸附增强拉曼散射的发现是光谱学和分析技术史上的一个里程碑。人们投入了大量的实验和理论努力来理解表面增强拉曼散射(SERS)效应,并展示其在各种类型的超灵敏传感应用中的潜力,这些应用涉及广泛的领域。自发现以来的 45 年中,SERS 已经发展成为一个丰富的研究和技术领域,但在分析和商业产品中常规使用之前,仍需要进一步的努力。在这篇综述中,来自世界各地的知名作者齐聚一堂,总结了理解和使用 SERS 的最新进展,并预测了在不久的将来,在研究、应用和技术发展方面可能会有哪些进展。本文是为 SERS 先驱者和我们的合著者理查德·范杜因教授(已故)而作的,在准备本文的过程中,我们失去了他。