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Study on metal microparticle content of the material transferred with Absorbing Film Assisted Laser Induced Forward Transfer when using silver absorbing layer

机译:使用银吸收层的吸收膜辅助激光诱导正向转移转移材料中金属微粒含量的研究

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Absorbing Film Assisted Laser Induced Forward Transfer (AFA-LIFT) is a modified LIFT method where a high absorption coefficient thin film coating of a transparent substrate is used to transform the laser energy into kinetic in order to transfer the "target" material spread on it. This method can be used for the transfer of biomaterials and living cells, which could be damaged by direct irradiation of the laser beam. In previous experiments, similar to 50-100 nm thick metal films have been used as absorbing layer. The transferred material can also contain metal microparticles originating from the absorbing thin film and acting as non-desired impurities in some cases. The aim of our work was to study how the properties (number, size and covered area) of metal particles transferred during the AFA-LIFT process depend on film thickness and the applied fluence. Silver thin films with different thickness (50-400 nm) were used as absorbing layers and real experimental conditions were modeled by a 100 mu m thick water layer. The particles transferred without the use of water layer were also studied. The threshold laser fluence for the complete removal of the absorber from the irradiated area was found to strongly increase with increasing film thickness. The deposited micrometer and submicrometer particles were observed with optical microscope and atomic force microscope. Their size ranged from 100 nm to 20 mu m and depended on the laser fluence. The increase in fluence resulted in an increasing number of particles of smaller average size. (c) 2005 Elsevier B.V. All rights reserved.
机译:吸收膜辅助激光诱导前向转移(AFA-LIFT)是一种改进的LIFT方法,其中使用透明衬底的高吸收系数薄膜涂层将激光能量转换为动能,以转移散布在其上的“目标”材料。该方法可用于生物材料和活细胞的转移,这可能会受到激光束的直接照射而损坏。在先前的实验中,类似于50-100 nm厚的金属膜已被用作吸收层。所转移的材料还可以包含源自吸收薄膜的金属微粒,并且在某些情况下充当不希望的杂质。我们的工作目的是研究在AFA-LIFT过程中转移的金属颗粒的性质(数量,大小和覆盖面积)如何取决于膜厚度和所施加的注量。将具有不同厚度(50-400 nm)的银薄膜用作吸收层,并通过100μm厚的水层模拟真实的实验条件。还研究了不使用水层转移的颗粒。已经发现,随着膜厚的增加,用于将吸收体从照射区域完全去除的阈值激光能量密度会大大增加。用光学显微镜和原子力显微镜观察沉积的微米和亚微米颗粒。它们的大小在100 nm至20μm之间,取决于激光通量。能量密度的增加导致平均尺寸较小的颗粒数量增加。 (c)2005 Elsevier B.V.保留所有权利。

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