Bonyár Attila, Kovács Rebeka
Department of Electronics Technology, Faculty of Electrical Engineering and Informatics, Budapest University of Technology and Economics, 1111 Budapest, Hungary.
Institute for Solid State Physics and Optics, Wigner Research Centre for Physics of the Hungarian Academy of Sciences, 1525 Budapest, Hungary.
Nanomaterials (Basel). 2023 Jul 11;13(14):2044. doi: 10.3390/nano13142044.
In this work, we aim to design the digital twin of a plasmonic sensor based on hexagonally arranged ellipsoidal gold nanoparticles fixed to a glass substrate. Based on electron microscopy images of three experimentally realized nanoparticle arrangement types, we constructed numerical models in environments based on finite element method (FEM) and boundary element method (BEM), namely COMSOL Multiphysics for FEM and the MNPBEM Matlab Toolbox for BEM. Models with nonperiodic and periodic boundary conditions with different unit cells were constructed to study the plasmonic behavior of both the single ellipsoidal particles and the hexagonal nanoparticle arrangements. The effect of the geometrical parameters, namely the interparticle distance, the nanoparticle diameter and thickness, on the resulting LSPR peak positions and bulk refractive index sensitivities were studied in detail, also taking into account the effect of the SiO substrate (pillars) under the ellipsoidal particles. We have demonstrated that by optimizing the models, the LSPR peak positions (and sensitivities) can match the experimentally measured values within 1 nm (nm/RIU) precision. The comparison of simulation conditions and the detailed discussion of the effect of the geometrical parameters and used gold dielectric functions on the obtained sensitivities can be very beneficial for the optimization of plasmonic sensor constructions through numerical simulations.
在这项工作中,我们旨在设计一种基于固定在玻璃基板上的六边形排列的椭球形金纳米颗粒的表面等离子体共振传感器的数字孪生模型。基于三种实验实现的纳米颗粒排列类型的电子显微镜图像,我们在基于有限元方法(FEM)和边界元方法(BEM)的环境中构建了数值模型,即用于FEM的COMSOL Multiphysics和用于BEM的MNPBEM Matlab工具箱。构建了具有不同单位晶胞的非周期性和周期性边界条件的模型,以研究单个椭球形颗粒和六边形纳米颗粒排列的表面等离子体行为。详细研究了几何参数,即颗粒间距离、纳米颗粒直径和厚度,对所得局域表面等离子体共振(LSPR)峰位置和体折射率灵敏度的影响,同时还考虑了椭球形颗粒下方SiO衬底(支柱)的影响。我们已经证明,通过优化模型,LSPR峰位置(和灵敏度)可以在1nm(nm/RIU)精度内与实验测量值匹配。模拟条件的比较以及几何参数和所使用的金介电函数对获得的灵敏度的影响的详细讨论,对于通过数值模拟优化表面等离子体共振传感器结构可能非常有益。