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Nonlinear absorption and scattering of a single plasmonic nanostructure characterized by x-scan technique

机译:用x扫描技术表征单个等离子体纳米结构的非线性吸收和散射

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摘要

Nonlinear nanoplasmonics is a largely unexplored research area that paves the way for many exciting applications, such as nanolasers, nanoantennas, and nanomodulators. In the field of nonlinear nanoplasmonics, it is highly desirable to characterize the nonlinearity of the optical absorption and scattering of single nanostructures. Currently, the common method to quantify optical nonlinearity is the -scan technique, which yields real and imaginary parts of the permittivity by moving a thin sample with a laser beam. However, -scan typically works with thin films, and thus acquires nonlinear responses from ensembles of nanostructures, not from single ones. In this work, we present an -scan technique that is based on a confocal laser scanning microscope equipped with forward and backward detectors. The two-channel detection offers the simultaneous quantification for the nonlinear behavior of scattering, absorption and total attenuation by a single nanostructure. At low excitation intensities, both scattering and absorption responses are linear, thus confirming the linearity of the detection system. At high excitation intensities, we found that the nonlinear response can be derived directly from the point spread function of the -scan images. Exceptionally large nonlinearities of both scattering and absorption are unraveled simultaneously for the first time. The present study not only provides a novel method for characterizing nonlinearity of a single nanostructure, but also reports surprisingly large plasmonic nonlinearities.
机译:非线性纳米等离子体技术是一个尚未开发的研究领域,为许多激动人心的应用铺平了道路,例如纳米激光,纳米天线和纳米调制器。在非线性纳米等离子体领域,非常需要表征单个纳米结构的光吸收和散射的非线性。当前,量化光学非线性的常用方法是-scan技术,该技术通过用激光束移动稀薄样品来产生介电常数的实部和虚部。但是,-scan通常适用于薄膜,因此可以从整个纳米结构而不是单个纳米结构中获得非线性响应。在这项工作中,我们提出了一种-扫描技术,该技术基于配备有向前和向后检测器的共聚焦激光扫描显微镜。两通道检测可同时量化单个纳米结构的散射,吸收和总衰减的非线性行为。在低激发强度下,散射和吸收响应都是线性的,因此证实了检测系统的线性。在高激发强度下,我们发现非线性响应可以直接从-scan图像的点扩散函数得出。首次同时揭示了散射和吸收的异常大的非线性。本研究不仅提供了一种表征单个纳米结构非线性的新颖方法,而且还报道了令人惊讶的大等离激元非线性。

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