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功能纳米工程与纳秒激光织构化的结合设计具有优异机械和化学性能的超疏水铝合金

Combination of Functional Nanoengineering and Nanosecond Laser Texturing for Design of Superhydrophobic Aluminum Alloy with Exceptional Mechanical and Chemical Properties.

机构信息

A. N. Frumkin Institute of Physical Chemistry and Electrochemistry , Leninsky prospect 31 bldg. 4, 119071 Moscow, Russia.

National Research Centre "Kurchatov Institute" , Pl. Akad. Kurchatova 1, 123182 Moscow, Russia.

出版信息

ACS Nano. 2017 Oct 24;11(10):10113-10123. doi: 10.1021/acsnano.7b04634. Epub 2017 Sep 7.

Abstract

Industrial application of metallic materials is hindered by several shortcomings, such as proneness to corrosion, erosion under abrasive loads, damage due to poor cold resistance, or weak resistance to thermal shock stresses, etc. In this study, using the aluminum-magnesium alloy as an example of widely spread metallic materials, we show that a combination of functional nanoengineering and nanosecond laser texturing with the appropriate treatment regimes can be successfully used to transform a metal into a superhydrophobic material with exceptional mechanical and chemical properties. It is demonstrated that laser chemical processing of the surface may be simultaneously used to impart multimodal roughness and to modify the composition and physicochemical properties of a thick surface layer of the substrate itself. Such integration of topographical and physicochemical modification leads to specific surface nanostructures such as nanocavities filled with hydrophobic agent and hard oxynitride nanoinclusions. The combination of superhydrophobic state, nano- and micro features of the hierarchical surface, and the appropriate composition of the surface textured layer allowed us to provide the surface with the outstanding level of resistance of superhydrophobic coatings to external chemical and mechanical impacts. In particular, experimental data presented in this study indicate high resistance of the fabricated coatings to pitting corrosion, superheated water vapor, sand abrasive wear, and rapid temperature cycling from liquid nitrogen to room temperatures, without notable degradation of superhydrophobic performance.

摘要

金属材料的工业应用受到多种缺点的阻碍,例如易腐蚀、在磨料负荷下侵蚀、耐低温性能差、或对热冲击应力的抵抗力弱等。在这项研究中,我们以广泛应用的金属材料——铝镁合金为例,表明功能纳米工程和纳秒激光加工与适当的处理方案相结合,可以成功地将金属转变为具有优异机械和化学性能的超疏水材料。研究表明,表面的激光化学处理可以同时赋予多模态粗糙度,并改变基底自身厚表面层的组成和物理化学性质。这种形貌和物理化学改性的集成导致了特定的表面纳米结构,例如填充疏水剂的纳米空穴和硬氧化氮纳米夹杂物。超疏水状态、分层表面的纳米和微观特征以及表面纹理层的适当组成的结合,使我们能够为表面提供超疏水涂层对外界化学和机械冲击的卓越抵抗能力。具体来说,本研究中提出的实验数据表明,所制备的涂层具有很高的抗点蚀、过热水蒸气、砂磨磨损和从液氮到室温的快速温度循环的能力,而超疏水性能没有明显下降。

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