Ponomareva Ekaterina, Volk Kirsten, Mulvaney Paul, Karg Matthias
Institut für Physikalische Chemie I: Kolloide und Nanooptik, Heinrich-Heine-Universität Düsseldorf, Universitätsstraße 1, D-40225 Düsseldorf, Germany.
ARC Centre of Excellence in Exciton Science, School of Chemistry, The University of Melbourne, Parkville VIC 3010, Australia.
Langmuir. 2020 Nov 17;36(45):13601-13612. doi: 10.1021/acs.langmuir.0c02430. Epub 2020 Nov 4.
Surface lattice resonances are optical resonances composed of hybridized plasmonic and diffractive modes. These collective resonances occur in periodic arrays of plasmonic nanoparticles with wavelength-scale interparticle distances. The appearance and strength of surface lattice resonances strongly depend on the single particle localized surface plasmon resonance and its spectral overlap with the diffractive modes of the array. Coupling to in-plane orders of diffraction is also strongly affected by the refractive index environment and its symmetry. In this work, we address the impact of the interparticle distance, the symmetry of the refractive index environment, and structural imperfections in self-assembled colloidal monolayers on the plasmonic-diffractive coupling. For this purpose, we prepared hexagonally ordered, nonclose packed monolayers of gold nanoparticles using a fast and efficient, interface-mediated, colloidal self-assembly approach. By tuning the thickness and deformability of the polymer shells, we were able to prepare monolayers with a broad range of interparticle distances. The optical properties of the samples were studied experimentally by UV-Vis spectroscopy and theoretically by finite difference time domain simulations. The measured and simulated spectra allow a comprehensive analysis of the details of electromagnetic coupling in periodic plasmonic arrays. In particular, we identify relevant criteria required for surface lattice resonances in the visible wavelength range with optimized quality factors in self-assembled monolayers.
表面晶格共振是由等离子体激元和衍射模式杂化而成的光学共振。这些集体共振发生在等离子体纳米颗粒的周期性阵列中,颗粒间距离为波长尺度。表面晶格共振的出现和强度强烈依赖于单粒子局域表面等离子体共振及其与阵列衍射模式的光谱重叠。与面内衍射级次的耦合也受到折射率环境及其对称性的强烈影响。在这项工作中,我们研究了粒子间距离、折射率环境的对称性以及自组装胶体单层中的结构缺陷对等离子体-衍射耦合的影响。为此,我们采用一种快速高效的界面介导胶体自组装方法制备了金纳米颗粒的六角有序、非紧密堆积单层。通过调节聚合物壳层的厚度和可变形性,我们能够制备出具有广泛粒子间距离的单层。通过紫外-可见光谱对样品的光学性质进行了实验研究,并通过时域有限差分模拟进行了理论研究。测量和模拟的光谱允许对周期性等离子体阵列中的电磁耦合细节进行全面分析。特别是,我们确定了在自组装单层中具有优化品质因数的可见波长范围内表面晶格共振所需的相关标准。