Center for Advanced Research of Energy and Materials, Faculty of Engineering, Hokkaido University, Sapporo, Hokkaido 060-8628, Japan.
Nanotechnology. 2017 Jul 7;28(27):275701. doi: 10.1088/1361-6528/aa74f7.
The in situ observation of Au dot formation and the self-assembly dynamics of Au nanoparticles (NPs) was successfully demonstrated via dewetting of Au thin films on SiO glass substrates under nano-second pulsed laser irradiation using a multi-quantum beam high-voltage electron microscope. Moreover, using electron energy-loss spectroscopy (EELS) performed in a scanning transmission electron microscope (STEM), the plasmonic properties of the formed Au/SiO nanostructure were analyzed to demonstrate its validity in advanced optical devices. The uniformly distributed Au NPs evolved into a dot alignment through movement and coalescence processes was demonstrated in this in situ observation. We carried out the plasmon-loss images of the plan view and the cross-section of the Au/SiO nanostructures were obtained at the plasmon-loss peak energy for investigate the three-dimensional distribution of surface plasmon. Furthermore, discrete-dipole approximation (DDA) calculations were used to simulate the plasmonic properties, such as the surface plasmon resonance and the surface plasmon field distribution, of isolated single Au/SiO nanostructures. This STEM-EELS-acquired surface plasmon map of the cross-sectional sample is in excellent agreement with the DDA calculations. This results demonstrated the influence of the contact condition between Au NP and SiO glass on the plasmonic properties, and may improve the technology for developing advanced optical devices.
通过使用多束纳秒脉冲激光辐照在 SiO2 玻璃衬底上的 Au 薄膜,成功地原位观察了 Au 点的形成和 Au 纳米粒子(NPs)的自组装动力学。此外,使用在扫描透射电子显微镜(STEM)中进行的电子能量损失光谱(EELS)分析了形成的 Au/SiO 纳米结构的等离子体特性,以证明其在先进光学器件中的有效性。通过原位观察证明了通过运动和聚结过程均匀分布的 Au NPs 演变成点对齐。我们对 Au/SiO 纳米结构的平面图和横截面进行了等离子体损耗图像,在等离子体损耗峰能量处获得了用于研究表面等离子体的三维分布的结果。此外,离散偶极子近似(DDA)计算用于模拟孤立的单个 Au/SiO 纳米结构的等离子体特性,如表面等离子体共振和表面等离子体场分布。这种通过 STEM-EELS 获得的横截面样品的表面等离子体图谱与 DDA 计算非常吻合。这些结果表明了 Au NP 与 SiO2 玻璃之间的接触条件对等离子体特性的影响,并可能改善开发先进光学器件的技术。