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飞秒激光辅助金薄膜的结晶

Femtosecond Laser Assisted Crystallization of Gold Thin Films.

作者信息

Sharif Ayesha, Farid Nazar, Vijayaraghavan Rajani K, McNally Patrick J, O'Connor Gerard M

机构信息

National Centre for Laser Applications (NCLA), School of Physics, National University of Ireland Galway, H91 TK33 Galway, Ireland.

I-Form, the SFI Research Centre for Advanced Manufacturing, National Centre for Laser Applications (NCLA), School of Physics, National University of Ireland Galway, H91 TK33 Galway, Ireland.

出版信息

Nanomaterials (Basel). 2021 Apr 30;11(5):1186. doi: 10.3390/nano11051186.

Abstract

We propose a novel low temperature annealing method for selective crystallization of gold thin films. Our method is based on a non-melt process using highly overlapped ultrashort laser pulses at a fluence below the damage threshold. Three different wavelengths of a femtosecond laser with the fundamental (1030 nm), second (515 nm) and third (343 nm) harmonic are used to crystallize 18-nm and 39-nm thick room temperature deposited gold thin films on a quartz substrate. Comparison of laser wavelengths confirms that improvements in electrical conductivity up to 40% are achievable for 18-nm gold film when treated with the 515-nm laser, and the 343-nm laser was found to be more effective in crystallizing 39-nm gold films with 29% improvement in the crystallinity. A two-temperature model provides an insight into ultrashort laser interactions with gold thin films and predicts that applied fluence was insufficient to cause melting of gold films. The simulation results suggest that non-equilibrium energy transfer between electrons and lattice leads to a solid-state and melt-free crystallization process. The proposed low fluence femtosecond laser processing method offers a possible solution for a melt-free thin film crystallization for wide industrial applications.

摘要

我们提出了一种用于金薄膜选择性结晶的新型低温退火方法。我们的方法基于一种非熔化过程,该过程使用高度重叠的超短激光脉冲,其能量密度低于损伤阈值。使用具有基频(1030nm)、二次谐波(515nm)和三次谐波(343nm)的三种不同波长的飞秒激光,使在石英衬底上室温沉积的18nm和39nm厚的金薄膜结晶。激光波长的比较证实,用515nm激光处理时,18nm金薄膜的电导率可提高40%,并且发现343nm激光在使39nm金薄膜结晶方面更有效,结晶度提高了29%。双温度模型有助于深入了解超短激光与金薄膜的相互作用,并预测所施加的能量密度不足以使金薄膜熔化。模拟结果表明,电子与晶格之间的非平衡能量转移导致了固态且无熔化的结晶过程。所提出的低能量密度飞秒激光加工方法为广泛的工业应用中的无熔化薄膜结晶提供了一种可能的解决方案。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/06dc/8146425/59fb2bf32dc8/nanomaterials-11-01186-g001.jpg

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