Wang Yaorong, Peng Zhiwei, De Wilde Yannick, Lei Dangyuan
Department of Materials Science and Engineering, City University of Hong Kong, Hong Kong S.A.R., China.
Institut Langevin, ESPCI Paris, CNRS, Université PSL, Paris, France.
Nanophotonics. 2024 Jun 3;13(18):3337-3346. doi: 10.1515/nanoph-2024-0118. eCollection 2024 Aug.
The linear and nonlinear optical properties of metallic nanoparticles have attracted considerable experimental and theoretical research interest. To date, most researchers have focused primarily on exploiting their plasmon excitation enhanced near-field and far-field responses and related applications in sensing, imaging, energy harvesting, conversion, and storage. Among numerous plasmonic structures, nanoparticle dimers, being a structurally simple and easy-to-prepare system, hold significant importance in the field of nanoplasmonics. In highly symmetric plasmonic nanostructures, although the odd-order optical nonlinearity of the near-surface region will be improved because of the enhanced near-fields, even-order nonlinear processes such as second-harmonic generation (SHG) will still be quenched and thus optically forbidden. Under this premise, it is imperative to introduce structural symmetry breaking to realize plasmon-enhanced even-order optical nonlinearity. Here, we fabricate a series of nanoparticle dimers each composed of two gold nanospheres with different diameters and subsequently investigate their structural asymmetry dependent linear and nonlinear optical properties. We find that the SHG intensities of gold nanosphere dimers are significantly enhanced by structural asymmetry under off-resonance excitation while the plasmonic near-field enhancement mainly affects SHG under on-resonance excitation. Our results reveal that symmetry breaking will play an indispensable role when designing novel coupled plasmonic nanostructures with enhanced nonlinear optical properties.
金属纳米粒子的线性和非线性光学性质已引起了大量的实验和理论研究兴趣。迄今为止,大多数研究人员主要专注于利用其等离子体激元激发增强的近场和远场响应以及在传感、成像、能量收集、转换和存储等方面的相关应用。在众多等离子体结构中,纳米粒子二聚体作为一种结构简单且易于制备的体系,在纳米等离子体领域具有重要意义。在高度对称的等离子体纳米结构中,尽管近表面区域的奇阶光学非线性会由于增强的近场而得到改善,但诸如二次谐波产生(SHG)等偶阶非线性过程仍会被淬灭,因此在光学上是被禁止的。在此前提下,引入结构对称性破缺以实现等离子体增强的偶阶光学非线性势在必行。在此,我们制备了一系列由两个不同直径的金纳米球组成的纳米粒子二聚体,并随后研究了它们依赖于结构不对称性的线性和非线性光学性质。我们发现,在非共振激发下,结构不对称性显著增强了金纳米球二聚体的二次谐波产生强度,而等离子体近场增强主要在共振激发下影响二次谐波产生。我们的结果表明,在设计具有增强非线性光学性质的新型耦合等离子体纳米结构时,对称性破缺将发挥不可或缺的作用。