Amendola Vincenzo, Pilot Roberto, Frasconi Marco, Maragò Onofrio M, Iatì Maria Antonia
Department of Chemical Sciences, University of Padova, via Marzolo 1, I-35131 Padova, Italy. Consorzio INSTM, UdR Padova, Italy.
J Phys Condens Matter. 2017 May 24;29(20):203002. doi: 10.1088/1361-648X/aa60f3.
In the last two decades, plasmon resonance in gold nanoparticles (Au NPs) has been the subject of intense research efforts. Plasmon physics is intriguing and its precise modelling proved to be challenging. In fact, plasmons are highly responsive to a multitude of factors, either intrinsic to the Au NPs or from the environment, and recently the need emerged for the correction of standard electromagnetic approaches with quantum effects. Applications related to plasmon absorption and scattering in Au NPs are impressively numerous, ranging from sensing to photothermal effects to cell imaging. Also, plasmon-enhanced phenomena are highly interesting for multiple purposes, including, for instance, Raman spectroscopy of nearby analytes, catalysis, or sunlight energy conversion. In addition, plasmon excitation is involved in a series of advanced physical processes such as non-linear optics, optical trapping, magneto-plasmonics, and optical activity. Here, we provide the general overview of the field and the background for appropriate modelling of the physical phenomena. Then, we report on the current state of the art and most recent applications of plasmon resonance in Au NPs.
在过去二十年中,金纳米颗粒(Au NPs)中的等离子体共振一直是大量研究工作的主题。等离子体物理学引人入胜,其精确建模被证明具有挑战性。事实上,等离子体对许多因素高度敏感,这些因素要么是Au NPs固有的,要么来自环境,最近出现了用量子效应修正标准电磁方法的需求。与Au NPs中等离子体吸收和散射相关的应用多得令人印象深刻,从传感到光热效应再到细胞成像。此外,等离子体增强现象在多个方面都非常有趣,例如包括附近分析物的拉曼光谱、催化或太阳能转换。另外,等离子体激发涉及一系列先进的物理过程,如非线性光学、光镊、磁等离子体和光学活性。在此,我们提供该领域的总体概述以及对物理现象进行适当建模的背景知识。然后,我们报告Au NPs中等离子体共振的当前技术水平和最新应用。