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Fabrication of mechanically enhanced superhydrophobic surface using nanosecond laser-based high-throughput surface nanostructuring (nHSN)

机译:基于纳秒激光的高通量表面纳米结构(NHSN)的机械增强的超疏水表面的制备(NHSN)

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In this work, we conduct a systematic experimental investigation of surface integrity for steel and aluminum alloys processed via nanosecond laser-based high-throughput surface nanostructuring (nHSN) process. nHSN surface morphology and surface chemistry are first experimentally characterized, and the results show that surface nanostructure with proper surface chemistry is generated due to the combined effect of chemical etching and attachment of functional groups of low surface energy. Desired surface wetting behavior is achieved using a proper silane reagent during the nHSN chemical immersion treatment phase, while surface nanostructure can be finely modulated by adjusting the laser processing parameters. nHSN nanostructures with fluorosilane chemistry exhibit strong capability to repel water, leading to superhydrophobicity achieved on two important engineering metal alloys, namely steel and aluminium alloys. It is further experimentally demonstrated that the microhardness and anti-corrosion performance of the nHSN surface can be significantly enhanced compared with the untreated surface, indicating that the nHSN process is very effective for enhancing the mechanical strength and corrosion resistance of these important metal alloys. These results show that nHSN simultaneously creates random nanostructures, attains desirable surface chemistry and enhances surface integrity over large-area metal alloy surfaces.
机译:在这项工作中,我们对通过纳秒激光的高通量表面纳米结构(NHSN)工艺处理的钢和铝合金表面完整性进行了系统的实验研究。 NHSN表面形态和表面化学是首次实验表征的,结果表明,由于化学蚀刻和低表面能的官能团的附着的综合效应,产生了具有适当表面化学的表面纳米结构。在NHSN化学浸入处理阶段使用适当的硅烷试剂实现所需的表面润湿行为,而表面纳米结构可以通过调节激光加工参数来精细调制。 NHSN纳米结构与氟硅烷化学表现出强烈的抵抗水的能力,导致两种重要的工程金属合金,即钢和铝合金实现的超水性。进一步实验表明,与未处理的表面相比,可以显着提高NHSN表面的显微硬度和抗腐蚀性能,表明NHSN工艺非常有效地提高这些重要金属合金的机械强度和耐腐蚀性。这些结果表明,NHSN同时产生随机纳米结构,达到所需的表面化学并增强大面积金属合金表面的表面完整性。

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