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通过光驱动爆炸对共振介电微结构进行纳米级重塑。

Nanoscale reshaping of resonant dielectric microstructures by light-driven explosions.

作者信息

Shcherbakov Maxim R, Sartorello Giovanni, Zhang Simin, Bocanegra Joshua, Bosch Melissa, Tripepi Michael, Talisa Noah, AlShafey Abdallah, Smith Joseph, Londo Stephen, Légaré François, Chowdhury Enam, Shvets Gennady

机构信息

Department of Electrical Engineering and Computer Science, University of California, Irvine, CA, 92697, USA.

Beckman Laser Institute and Medical Clinic, University of California, Irvine, CA, 92612, USA.

出版信息

Nat Commun. 2023 Oct 21;14(1):6688. doi: 10.1038/s41467-023-42263-w.

Abstract

Femtosecond-laser-assisted material restructuring employs extreme optical intensities to localize the ablation regions. To overcome the minimum feature size limit set by the wave nature of photons, there is a need for new approaches to tailored material processing at the nanoscale. Here, we report the formation of deeply-subwavelength features in silicon, enabled by localized laser-induced phase explosions in prefabricated silicon resonators. Using short trains of mid-infrared laser pulses, we demonstrate the controllable formation of high aspect ratio (>10:1) nanotrenches as narrow as [Formula: see text]. The trench geometry is shown to be scalable with wavelength, and controlled by multiple parameters of the laser pulse train, such as the intensity and polarization of each laser pulse and their total number. Particle-in-cell simulations reveal localized heating of silicon beyond its boiling point and suggest its subsequent phase explosion on the nanoscale commensurate with the experimental data. The observed femtosecond-laser assisted nanostructuring of engineered microstructures (FLANEM) expands the nanofabrication toolbox and opens exciting opportunities for high-throughput optical methods of nanoscale structuring of solid materials.

摘要

飞秒激光辅助材料重构利用极高的光强来定位烧蚀区域。为了克服由光子波动性所设定的最小特征尺寸限制,需要新的方法来实现纳米尺度的定制材料加工。在此,我们报告了在预制硅谐振器中通过局部激光诱导的相位爆炸在硅中形成深亚波长特征。使用短串中红外激光脉冲,我们展示了可控制地形成高纵横比(>10:1)、窄至[公式:见正文]的纳米沟槽。结果表明,沟槽几何形状可随波长扩展,并由激光脉冲串的多个参数控制,如每个激光脉冲的强度和偏振以及它们的总数。粒子模拟揭示了硅在沸点以上的局部加热,并表明其随后在纳米尺度上的相位爆炸与实验数据相符。所观察到的工程微结构的飞秒激光辅助纳米结构化(FLANEM)扩展了纳米制造工具箱,并为固体材料纳米尺度结构化的高通量光学方法带来了令人兴奋的机会。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5743/10590427/97e64625aa99/41467_2023_42263_Fig1_HTML.jpg

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