论文标题

使用原子模拟对纳米颗粒形状转化的见解

Insights into nanoparticle shape transformation by energetic ions using atomistic simulations

论文作者

Leino, Aleksi A., Jantunen, Ville E., Djurabekova, Flyura

论文摘要

嵌入在介电矩阵中的金属纳米颗粒的形状会影响复合材料的光学特性。迅速的重离子辐照可以诱导嵌入非晶硅二氧化硅中的黄金和其他金属中的可控形状转化,颗粒沿着离子束的方向延伸。这种转化的细节尚未完全理解,但它可能与由个别离子撞击引起的纳米尺度相变有关。尽管时间尺度的限制和金属 - 硅界面内的精确原子间模型不可避免地导致严重的简化,但这种现象已被使用原子模拟复制。我们通过精确的模型改善了模拟中的现实主义,以实现金和二氧化硅之间的表面粘附,并通过模拟撞击之间的基质中的过程。具有正确粘附的模拟表明,即使二氧化硅固化后,纳米颗粒也可以在熔融状态下以纵横比的形式生长。此外,我们证明了矩阵的积极作用:在影响之间的矩阵中没有明确建模过程,伸长率是有限的,并且在实验中没有达到显着的纵横比。这些结果显着提高了对在迅速重离子照射下嵌入的纳米颗粒中发展过程的理论理解。知识将离子光束技术推向了用于各种光学应用的嵌入式纳米结构的精确工具。

The shape of metal nanoparticles embedded in dielectric matrices influences the optical properties of the composite material. Swift heavy ion irradiation can induce a controllable shape transformation in gold and other metals embedded in amorphous silicon dioxide, where the particles elongate along the direction of the ion beam. The details of this transformation are not fully understood, but it is presumably related to nanometer-scale phase transitions induced by individual ion impacts. The phenomenon has been reproduced using atomistic simulations, although the time scale limitations and the lack of accurate interatomic models within the metal-silica interface lead unavoidably to severe simplifications. We improve the realism in the simulations with an accurate model for surface adhesion between gold and silica and by simulating the processes in the matrix between impacts. The simulations with correct adhesion show that the nanoparticles can grow in aspect ratio in the molten state even after silicon dioxide solidifies. Moreover, we demonstrate the active role of the matrix: without explicitly modeling processes in the matrix between impacts, the elongation is limited and does not reach significant aspect ratios seen in experiments. These results significantly improve the theoretical understanding of processes developing in embedded nanoparticles under swift heavy ion irradiation. The knowledge brings forward the ion beam technology as a precise tool for shaping of embedded nanostructures for various optical applications.

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