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Plasmon-Enhanced Photothermal and Optomechanical Deformations of a Gold Nanoparticle

机译:增强金纳米颗粒的等离子体增强的光热和光学力学变形

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摘要

Plasmon-enhanced photothermal and optomechanical effects on deforming and reshaping a gold nanoparticle (NP) are studied theoretically. A previous paper (Wang and Ding, ACS Nano 13, 32–37, 2019) has shown that a spherical gold nanoparticle (NP) irradiated by a tightly focused laser beam can be deformed into an elongated nanorod (NR) and even chopped in half (a dimer). The mechanism is supposed to be caused by photothermal heating for softening NP associated with optical traction for follow-up deformation. In this paper, our study focuses on deformation induced by Maxwell’s stress provided by a linearly polarized Gaussian beam upon the surface of a thermal-softened NP/NR. We use an elastic model to numerically calculate deformation according to optical traction and a viscoelastic model to theoretically estimate the following creep (elongation) as temperature nears the melting point. Our results indicate that a stretching traction at the two ends of the NP/NR causes elongation and a pinching traction at the middle causes a dent. Hence, a bigger NP can be elongated and then cut into two pieces (a dimer) at the dent due to the optomechanical effect. As the continuous heating process induces premelting of NPs, a quasi-liquid layer is formed first and then an outer liquid layer is induced due to reduction of surface energy, which was predicted by previous works of molecular dynamics simulation. Subsequently, we use the Young–Laplace model to investigate the surface tension effect on the following deformation. This study may provide an insight into utilizing the photothermal effect associated with optomechanical manipulation to tailor gold nanostructures.
机译:从理论上研究了对变形和重塑金纳米粒子(NP)的变形和重塑的去摄光热和光学力学效果。先前的论文(王和丁,ACS Nano 13,32-37,2019)表明,通过紧焦的激光束照射的球形金纳米粒子(NP)可以使细长的纳米棒(NR)变形,甚至切入一半(二聚体)。该机构应该由光热加热来引起用于软化与光学牵引相关的用于随访变形的NP。在本文中,我们的研究侧重于Maxwell的应力在热软化的NP / NR的表面上线性偏振高斯光束提供的麦克斯韦的应力诱导的变形。我们使用弹性模型根据光学牵引和粘弹性模型来数值计算变形,从理论上估计以下蠕变(伸长率),因为温度接近熔点。我们的结果表明,NP / NR的两端的拉伸牵引导致伸长率和中间的夹紧牵引导致凹痕。因此,由于光学力学效应,较大的NP可以伸长,然后在凹部中切成两个件(二聚体)。随着连续加热过程诱导NPS的预头,首先形成准液体层,然后由于表面能的还原而引起外液层,这是通过先前的分子动力学模拟的作品预测的。随后,我们使用幼拉模型来研究表面张力对以下变形的影响。该研究可以提供利用与光学机械操作相关的光热效果来定制金纳米结构的光热效果。

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