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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Tuning Surface Wettability at the Submicron-Scale: Effect of Focused Ion Beam Irradiation on a Self-Assembled Monolayer
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Tuning Surface Wettability at the Submicron-Scale: Effect of Focused Ion Beam Irradiation on a Self-Assembled Monolayer

机译:在亚微米尺度上调整表面润湿性:聚焦离子束辐照对自组装单分子膜的影响

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摘要

Realizing surface wettability tuning at the submicron-scale resolution is expected to enable the fabrication of microano-structured fluidic devices and is particularly important in nanobiotechnology and high-resolution printing. Herein, we propose an approach to modify the wettability of self-assembled monolayer surfaces using focused ion beam (FIB) irradiation. The contact angle of the irradiated region changed from hydrophobic to hydrophilic by increasing the ion dosage. The chemical composition and associated depth profile of the sample surfaces were analyzed by glow discharge-optical emission spectroscopy. The results indicated that the content of fluorine at the surface decreased after FIB irradiation of the samples. A submicron-scale hydrophobic-hydrophilic hybrid surface was then fabricated by forming hydrophilic dots with diameters of similar to 110 nm on a hydrophobic surface by FIB irradiation. The difference in wettability of the hydrophobic and hydrophilic areas on the surface was confirmed by microscale condensation and evaporation experiments. Condensed droplets with diameters of similar to 300 nm appeared on the surface according to the fabricated pattern, thus suggesting that condensation preferentially occurred on the hydrophilic dots than on the hydrophobic surface. Furthermore, tiny droplets remained on the hydrophilic dots following evaporation of the larger droplets. The current approach provides a means to control wettability-driven phenomena.
机译:期望以亚微米级的分辨率实现表面润湿性调节,从而能够制造出微/纳米结构的流体装置,这在纳米生物技术和高分辨率印刷中尤为重要。在本文中,我们提出了一种使用聚焦离子束(FIB)辐射修改自组装单层表面的润湿性的方法。通过增加离子剂量,照射区域的接触角从疏水性变为亲水性。通过辉光放电-光发射光谱法分析了样品表面的化学成分和相关的深度分布。结果表明,FIB辐照样品后,表面氟含量降低。然后通过通过FIB照射在疏水表面上形成直径近似于110 nm的亲水点来制造亚微米级疏水-亲水杂化表面。表面的疏水性和亲水性区域在润湿性上的差异已通过微型缩合和蒸发实验得到了证实。根据所制造的图案,直径近似300nm的冷凝液滴出现在表面上,因此表明冷凝优先发生在亲水点上而不是疏水表面上。此外,较大的液滴蒸发后,微小的液滴仍保留在亲水点上。当前的方法提供了控制润湿性驱动现象的手段。

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