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单个 CdS 纳米带-等离子体结构的协同增强二次谐波产生。

Cooperative Enhancement of Second-Harmonic Generation from a Single CdS Nanobelt-Hybrid Plasmonic Structure.

机构信息

†Division of Physics and Applied Physics, School of Physical and Mathematical Sciences, Nanyang Technological University, Singapore 637371.

‡Energy Research Institute@NTU (ERI@N), Nanyang Technological University, 50 Nanyang Drive, Singapore 637553.

出版信息

ACS Nano. 2015 May 26;9(5):5018-26. doi: 10.1021/nn5072045. Epub 2015 May 4.

Abstract

Semiconductor nanostructures (e.g., nanowires and nanobelts) hold great promise as subwavelength coherent light sources, nonlinear optical frequency converters, and all-optical signal processors for optoelectronic applications. However, at such small scales, optical second-harmonic generation (SHG) is generally inefficient. Herein, we report on a straightforward strategy using a thin Au layer to enhance the SHG from a single CdS nanobelt by 3 orders of magnitude. Through detailed experimental and theoretical analysis, we validate that the augmented SHG originates from the mutual intensification of the local fields induced by the plasmonic nanocavity and by the reflections within the CdS Fabry-Pérot resonant cavity in this hybrid semiconductor-metal system. Polarization-dependent SHG measurements can be employed to determine and distinguish the contributions of SH signals from the CdS nanobelt and gold film, respectively. When the thickness of gold film becomes comparable to the skin depth, SHG from the gold film can be clearly observed. Our work demonstrates a facile approach for tuning the nonlinear optical properties of mesoscopic, nanostructured, and layered semiconductor materials.

摘要

半导体纳米结构(例如,纳米线和纳米带)有望成为亚波长相干光源、非线性光学频率转换器和全光信号处理器,用于光电应用。然而,在如此小的尺度下,光学二次谐波产生(SHG)通常效率不高。在此,我们报告了一种简单的策略,使用薄的 Au 层将单个 CdS 纳米带的 SHG 增强了 3 个数量级。通过详细的实验和理论分析,我们验证了增强的 SHG 源自于在这个混合半导体-金属系统中,由等离子体纳米腔和 CdS Fabry-Pérot 共振腔中的反射引起的局域场的相互增强。偏振相关的 SHG 测量可用于确定和区分分别来自 CdS 纳米带和金膜的 SH 信号的贡献。当金膜的厚度变得与趋肤深度相当时,就可以清楚地观察到金膜的 SHG。我们的工作展示了一种简便的方法,可用于调整介观、纳米结构和层状半导体材料的非线性光学性质。

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