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单个纳米物体的线性和超快非线性等离子体激元学

Linear and ultrafast nonlinear plasmonics of single nano-objects.

作者信息

Crut Aurélien, Maioli Paolo, Vallée Fabrice, Del Fatti Natalia

机构信息

FemtoNanoOptics group, Institut Lumière Matière UMR5306, Université Lyon 1, CNRS, Université de Lyon, 69622 Villeurbanne, France.

出版信息

J Phys Condens Matter. 2017 Mar 29;29(12):123002. doi: 10.1088/1361-648X/aa59cc. Epub 2017 Jan 17.

Abstract

Single-particle optical investigations have greatly improved our understanding of the fundamental properties of nano-objects, avoiding the spurious inhomogeneous effects that affect ensemble experiments. Correlation with high-resolution imaging techniques providing morphological information (e.g. electron microscopy) allows a quantitative interpretation of the optical measurements by means of analytical models and numerical simulations. In this topical review, we first briefly recall the principles underlying some of the most commonly used single-particle optical techniques: near-field, dark-field, spatial modulation and photothermal microscopies/spectroscopies. We then focus on the quantitative investigation of the surface plasmon resonance (SPR) of metallic nano-objects using linear and ultrafast optical techniques. While measured SPR positions and spectral areas are found in good agreement with predictions based on Maxwell's equations, SPR widths are strongly influenced by quantum confinement (or, from a classical standpoint, surface-induced electron scattering) and, for small nano-objects, cannot be reproduced using the dielectric functions of bulk materials. Linear measurements on single nano-objects (silver nanospheres and gold nanorods) allow a quantification of the size and geometry dependences of these effects in confined metals. Addressing the ultrafast response of an individual nano-object is also a powerful tool to elucidate the physical mechanisms at the origin of their optical nonlinearities, and their electronic, vibrational and thermal relaxation processes. Experimental investigations of the dynamical response of gold nanorods are shown to be quantitatively modeled in terms of modifications of the metal dielectric function enhanced by plasmonic effects. Ultrafast spectroscopy can also be exploited to unveil hidden physical properties of more complex nanosystems. In this context, two-color femtosecond pump-probe experiments performed on individual bimetallic heterodimers are discussed in the last part of the review, demonstrating the existence of Fano interferences in the optical absorption of a gold nanoparticle under the influence of a nearby silver one.

摘要

单粒子光学研究极大地增进了我们对纳米物体基本特性的理解,避免了影响系综实验的虚假非均匀效应。与提供形态学信息的高分辨率成像技术(如电子显微镜)相结合,能够通过解析模型和数值模拟对光学测量进行定量解释。在本专题综述中,我们首先简要回顾一些最常用的单粒子光学技术的基本原理:近场、暗场、空间调制和光热显微镜/光谱学。然后,我们将重点关注使用线性和超快光学技术对金属纳米物体的表面等离子体共振(SPR)进行定量研究。虽然测得的SPR位置和光谱面积与基于麦克斯韦方程组的预测结果吻合良好,但SPR宽度受量子限制(或者从经典角度来看,受表面诱导电子散射)的影响很大,对于小尺寸纳米物体,无法使用块状材料的介电函数来重现。对单个纳米物体(银纳米球和金纳米棒)进行的线性测量能够量化受限金属中这些效应的尺寸和几何依赖性。研究单个纳米物体的超快响应也是阐明其光学非线性起源的物理机制及其电子、振动和热弛豫过程的有力工具。金纳米棒动态响应的实验研究表明,可根据等离子体效应增强的金属介电函数的变化进行定量建模。超快光谱学还可用于揭示更复杂纳米系统隐藏的物理特性。在此背景下,综述的最后一部分讨论了对单个双金属异质二聚体进行的双色飞秒泵浦 - 探测实验,证明了在附近银纳米粒子的影响下,金纳米粒子的光吸收中存在法诺干涉。

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