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Using highly accurate 3D nanometrology to model the optical properties of highly irregular nanoparticles: A powerful tool for rational design of plasmonic devices

机译:使用高精度3D纳米计量学对高度不规则的纳米粒子的光学特性进行建模:合理设计等离激元设备的强大工具

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摘要

The realization of materials at the nanometer scale creates new challenges for quantitative characterization and modeling as many physical and chemical properties at the nanoscale are highly size and shape-dependent. In particular, the accurate nanometrological characterization of noble metal nanoparticles (NPs) is crucial for understanding their optical response that is determined by the collective excitation of conduction electrons, known as localized surface plasmons. Its manipulation gives place to a variety of applications in ultrasensitive spectroscopies, photonics, improved photovoltaics, imaging, and cancer therapy. Here we show that by combining electron tomography with electrodynamic simulations an accurate optical model of a highly irregular gold NP synthesized by chemical methods could be achieved. This constitutes a novel and rigorous tool for understanding the plasmonic properties of real three-dimensional nano-objects.
机译:纳米级材料的实现为定量表征和建模提出了新的挑战,因为纳米级的许多物理和化学性质高度依赖于尺寸和形状。尤其是,贵金属纳米颗粒(NPs)的准确纳米计量学表征对于理解其光学响应至关重要,而光学响应是由传导电子的集体激发(称为局部表面等离子体激元)决定的。它的操作为超敏感光谱学,光子学,改进的光伏技术,成像和癌症治疗提供了各种应用。在这里,我们表明通过将电子断层扫描与电动力学仿真相结合,可以实现通过化学方法合成的高度不规则金纳米颗粒的精确光学模型。这构成了一种新颖而严谨的工具,可用于理解真实的三维纳米物体的等离子体特性。

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