JOURNAL ARTICLE

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

Jiaxin SunLan JiangMingle GuanJiangfeng LiuSumei WangWeihua Zhu

Year: 2024 Journal:   Materials Vol: 17 (15)Pages: 3626-3626   Publisher: Multidisciplinary Digital Publishing Institute

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.

Keywords:
Femtosecond Finite-difference time-domain method Excitation Materials science Laser Ablation Substrate (aquarium) Field (mathematics) Laser ablation Plasma Optoelectronics Optics Nanotechnology Physics

Metrics

0
Cited By
0.00
FWCI (Field Weighted Citation Impact)
35
Refs
0.11
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Topics

Near-Field Optical Microscopy
Physical Sciences →  Engineering →  Biomedical Engineering
Laser Material Processing Techniques
Physical Sciences →  Engineering →  Computational Mechanics
Integrated Circuits and Semiconductor Failure Analysis
Physical Sciences →  Engineering →  Electrical and Electronic Engineering

Related Documents

JOURNAL ARTICLE

Femtosecond laser near field ablation

Anton PlechP. LeǐdererJohannes Boneberg

Journal:   Laser & Photonics Review Year: 2008 Vol: 3 (5)Pages: 435-451
JOURNAL ARTICLE

Gold nanosphere propulsion by using femtosecond laser-excited enhanced near field

Takuya ShinoharaMitsuhiro Terakawa

Journal:   Applied Physics A Year: 2014 Vol: 116 (3)Pages: 1025-1031
JOURNAL ARTICLE

Femtosecond Pulse Laser Near-Field Ablation of Ag Nanorods

Dezhi ZhuJianfeng Yan

Journal:   Applied Sciences Year: 2019 Vol: 9 (3)Pages: 363-363
© 2026 ScienceGate Book Chapters — All rights reserved.