Zhang Cong-Cong, Zhang Jia-Yi, Feng Jing-Ru, Liu Si-Ting, Ding Si-Jing, Ma Liang, Wang Qu-Quan
School of Mathematics and Physics, China University of Geosciences (Wuhan), Wuhan 430074, P. R. China.
Hubei Key Laboratory of Optical Information and Pattern Recognition, Wuhan Institute of Technology, Wuhan 430205, P. R. China.
Nanoscale. 2024 Mar 21;16(12):5960-5975. doi: 10.1039/d3nr06675d.
As the most common nonlinear optical process, second harmonic generation (SHG) has important application value in the field of nanophotonics. With the rapid development of metal nanomaterial processing and chemical preparation technology, various structures based on metal nanoparticles have been used to achieve the enhancement and modulation of SHG. In the field of nonlinear optics, plasmonic metal nanostructures have become potential candidates for nonlinear optoelectronic devices because of their highly adjustable physical characteristics. In this article, first, the basic optical principles of SHG and the source of surface symmetry breaking in metal nanoparticles are briefly introduced. Next, the related reports on SHG in metal nanostructures are reviewed from three aspects: the enhancement of SHG efficiency by double resonance structures, the SHG effect based on magnetic resonance and the harmonic energy transfer. Then, the applications of SHG in the sensing, imaging and monitoring of metal nanostructures are summarized. Future opportunities for SHG in composite systems composed of metal nanostructures and two-dimensional materials are also proposed.
作为最常见的非线性光学过程,二次谐波产生(SHG)在纳米光子学领域具有重要的应用价值。随着金属纳米材料加工和化学制备技术的快速发展,各种基于金属纳米粒子的结构已被用于实现SHG的增强和调制。在非线性光学领域,等离子体金属纳米结构因其高度可调节的物理特性而成为非线性光电器件的潜在候选材料。在本文中,首先简要介绍了SHG的基本光学原理以及金属纳米粒子中表面对称性破缺的来源。接下来,从三个方面综述了金属纳米结构中SHG的相关报道:双共振结构对SHG效率的增强、基于磁共振的SHG效应以及谐波能量转移。然后,总结了SHG在金属纳米结构的传感、成像和监测中的应用。还提出了SHG在由金属纳米结构和二维材料组成的复合系统中的未来机遇。