Simulations of Femtosecond-Laser Near-Field Ablation Using Nanosphere under Dynamic Excitation

Materials Pub Date : 2024-07-23 DOI:10.3390/ma17153626
Jiaxin Sun, Lan Jiang, Mingle Guan, Jiangfeng Liu, Sumei Wang, Weihua Zhu
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Abstract

Femtosecond lasers have garnered widespread attention owing to their subdiffraction processing capabilities. However, their intricate natures, involving intrapulse feedbacks between transient material excitation and laser propagation, often present significant challenges for near-field ablation predictions and simulations. To address these challenges, the current study introduces an improved finite-difference time-domain method (FDTD)–plasma model (plasma)–two-temperature model (TTM) framework for simulating the ablation processes of various nanospheres on diverse substrates, particularly in scenarios wherein dynamic and heterogeneous excitations significantly influence optical-field distributions. Initially, FDTD simulations of a single Au nanosphere on a Si substrate reveal that, with transitions in the excitation states of the substrate, the field-intensity distribution transforms from a profile with a single central peak to a bimodal structure, consistent with experimental reports. Subsequently, simulations of a polystyrene nanosphere array on a SiO2 substrate reveal that different excitation states of the nanospheres yield two distinct modes, namely near-field enhancement and masking. These modes cannot be adequately modeled in the FDTD simulations. Our combined model also considers the intrapulse feedback between the electromagnetic-field distribution resulting from near-field effects and material excitations. Furthermore, the model can quantitatively analyze subsequent electron–phonon coupling and material removal processes resulting from thermal-phase transitions. Consequently, our model facilitates predictions of the femtosecond-laser ablation of single nanospheres or nanosphere arrays with varying sizes and materials placed on substrates subjected to near-field effects.
在动态激励下使用纳米球模拟飞秒激光近场烧蚀
飞秒激光因其亚衍射处理能力而受到广泛关注。然而,飞秒激光的性质错综复杂,涉及瞬态材料激发和激光传播之间的脉冲内反馈,往往给近场烧蚀预测和模拟带来巨大挑战。为了应对这些挑战,本研究引入了一种改进的有限差分时域法(FDTD)-等离子体模型(plasma)-双温度模型(TTM)框架,用于模拟不同基底上各种纳米球的烧蚀过程,尤其是在动态和异质激发显著影响光场分布的情况下。首先,对硅基底上的单个金纳米球进行的 FDTD 模拟显示,随着基底激发态的转变,场强分布从具有单个中心峰的剖面转变为双峰结构,这与实验报告一致。随后,对二氧化硅基底上的聚苯乙烯纳米球阵列进行的模拟显示,纳米球的不同激发态会产生两种不同的模式,即近场增强和掩蔽。这些模式无法在 FDTD 模拟中充分建模。我们的组合模型还考虑了近场效应产生的电磁场分布与材料激发之间的脉冲内反馈。此外,该模型还能定量分析随后的电子-声子耦合以及热相转变产生的材料去除过程。因此,我们的模型有助于预测飞秒激光烧蚀单个纳米球或纳米球阵列的情况,这些纳米球或纳米球阵列具有不同的尺寸和材料,放置在受近场效应影响的基底上。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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