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通过固液转变实现激光诱导咖啡环结构用于彩色打印

Laser Induced Coffee-Ring Structure through Solid-Liquid Transition for Color Printing.

作者信息

Xie Jiawang, Qiao Ming, Zhu Dezhi, Yan Jianfeng, Deng Shengfa, He Guangzhi, Luo Ma, Zhao Yuzhi

机构信息

State Key Laboratory of Tribology in Advanced Equipment, Department of Mechanical Engineering, Tsinghua University, Beijing, 100084, China.

出版信息

Small. 2023 Feb;19(6):e2205696. doi: 10.1002/smll.202205696. Epub 2022 Nov 20.

Abstract

Metallic micro/nano structures with special physicochemical properties have undergone rapid development owing to their broad applications in micromachines and microdevices. Ultrafast laser processing is generally accepted as an effective technology for functional structures manufacture, however, the controllable fabrication of specific metallic micro/nano structures remains a challenge. Here, this work proposes a novel strategy of laser induced transient solid-liquid transition to fabricate unique structures. Through modulating the transient state of metal from solid to liquid phase using the initial pulse excitation, the subsequent ultrafast pulse-induced recoil pressure can suppress the plasma emission and removal of liquid phase metals, resulting in the controllable fabrication of coffee-ring structures. The solid-liquid transition dynamics, which related with the transient reflectivity and plasma intensity, are revealed by established two temperature model coupled with molecular dynamics model. The coffee-ring structure exhibits tunable structure color owing to various optical response, which can be used for color printing with large scale and high resolution. This work provides a promising strategy for fabricating functional micro/nano structures, which can greatly broaden the potential applications.

摘要

由于具有特殊物理化学性质的金属微纳结构在微机械和微器件中有着广泛应用,它们得到了快速发展。超快激光加工通常被认为是制造功能结构的有效技术,然而,特定金属微纳结构的可控制造仍然是一个挑战。在此,这项工作提出了一种激光诱导瞬态固液转变的新策略来制造独特结构。通过利用初始脉冲激发来调制金属从固相到液相的瞬态状态,随后超快脉冲诱导的反冲压力可以抑制等离子体发射并去除液相金属,从而实现咖啡环结构的可控制造。通过建立的双温度模型与分子动力学模型相结合,揭示了与瞬态反射率和等离子体强度相关的固液转变动力学。由于各种光学响应,咖啡环结构呈现出可调谐的结构颜色,可用于大规模、高分辨率的彩色打印。这项工作为制造功能微纳结构提供了一种有前景的策略,这可以极大地拓宽潜在应用。

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