论文标题

高质量的飞秒激光表面微/纳米结构,由薄霜层辅助

High-quality femtosecond laser surface micro/nano-structuring assisted by a thin frost layer

论文作者

Gao, Wenhai, Zheng, Kai, Liao, Yang, Du, Henglei, Liu, Chengpu, Ye, Chengrun, Liu, Ke, Xie, Shaoming, Chen, Cong, Chen, Junchi, Peng, Yujie, Leng, Yuxin

论文摘要

飞秒激光消融已被证明是一种具有高精度和准确性的微型/纳米级特征的多功能工具。但是,使用高激光量来提高消融效率通常会导致不良影响,例如碎片重新上沉积,重塑层的形成以及消融陨石坑中或周围的热影响区。在这里,我们通过利用厚度为数十万微米的薄霜层来避免这种限制,这可以通过从空气中的水蒸气凝结到暴露的表面,该表面的温度低于冰点。当飞秒激光束聚焦在覆盖有薄霜层的目标表面上时,只有激光辐射的斑点周围的局部霜冻层融化到水中,有助于提高消融效率,抑制重铸层并减少热影响区域,而其余的霜冻层则可以防止在目标表面上插入效率。通过这种霜辅助策略,在硅硅上讨论了高质量的表面微/纳米结构在高激光器的平面和弯曲表面上成功实现,以及在硅上进行了讨论。

Femtosecond laser ablation has been demonstrated to be a versatile tool to produce micro/nanoscale features with high precision and accuracy. However, the use of high laser fluence to increase the ablation efficiency usually results in unwanted effects, such as redeposition of debris, formation of recast layer and heat-affected zone in or around the ablation craters. Here we circumvent this limitation by exploiting a thin frost layer with a thickness of tens of microns, which can be directly formed by the condensation of water vapor from the air onto the exposed surface whose temperature is below the freezing point. When femtosecond laser beam is focused onto the target surface covered with a thin frost layer, only the local frost layer around the laser-irradiated spot melts into water, helping to boost ablation efficiency, suppress the recast layer and reduce the heat-affect zone, while the remaining frost layer can prevent ablation debris from adhering to the target surface. By this frost-assisted strategy, high-quality surface micro/nano-structures are successfully achieved on both plane and curved surfaces at high laser fluences, and the mechanism behind the formation of high-spatial-frequency (HSF) laser induced periodic surface structures (LIPSSs) on silicon is discussed.

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