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高效纳秒激光多功能表面制备及抗腐蚀性研究 被引量:6

Highly Efficient Nanosecond Laser-Based Multifunctional Surface Fabrication and Corrosion Resistance Performance
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摘要 近些年,激光加工方法被广泛用于功能性表面的制备。然而,现有的激光加工方法在处理速率、生产成本、制备表面的耐用性/可靠性方面仍有很大进步空间。本工作致力于研发一种高效激光多功能表面制备工艺。此工艺将激光表面加工与化学浸润处理相结合,先使用一定工艺窗口下的激光加工过程对表面进行预处理,再使用化学浸润过程进一步修饰微纳结构,同时改变表面能/表面化学。研究结果表明,激光加工与化学浸润共同作用下制备的微纳米化合金表面实现了超疏水性能和表面显微硬度的提升,同时该表面在海水和海洋大气环境中还展现出了优异的耐腐蚀性能。相对传统激光处理方法,所提方法在一定程度上提升了制备效率并降低了生产成本,在海洋工程领域有很好的应用前景。 Objective Corrosion is considered as the most critical problem in marine engineering,which results in severe life safety issues and tremendous economic loss.The conventional surface treatment laser texturing applies compact coating onto a metal surface to inhibit the aggression of corrosive medium but can be ineffective when electrolyte solution reaches the metal/coating interface.Recently,it has been proven that superhydrophobic surface exhibits impressive anti-corrosion properties.Among different fabrication techniques for superhydrophobic surfaces,ultrafast laser-based surface-texturing methods have been widely used,but still possess deficiencies,such as low processing efficiency and high maintenance costs.In this study,a novel highly efficient laser-based surface micro/nanostructuring technique was developed for the fabrication of multifunctional surfaces.The laser micro/nanostructured surface exhibits combined functionalities of superhydrophobicity,enhanced microhardness,and improved corrosion resistance in underwater and marine atmospheric environments.This technique shows distinct advantages in terms of processing rate and production cost compared with the conventional laser texturing techniques,which can have strong potential to render a series of applications in the area of marine engineering.Methods Two important engineering alloys—AISI4130 steel and AA6061 alloy—have been employed in this work as the testing materials.During the laser micro/nanostructuring process,the surface was first textured using a laser scanning system equipped with a single-mode high-energy pulsed nanosecond laser and a galvanometer laser scanner.Subsequently,the laser textured surface was immersed in an ethanol solution consisting of 1.5%mass fraction chlorosilane reagent for 3 h.After chemical immersion treatment,the specimens were cleaned and dried using compressed air.For surface characterizations,the surface topography and chemical compositions of the laser micro/nanostructured surface were first examined using laser scanning confocal microscopy/scanning electron microscopy and X-ray photoelectron spectroscopy.Afterward,the contact and roll-off angles of the laser micro/nanostructured surface were determined using a contact angle goniometer equipped with a high-resolution CMOS camera.In the next step,the Vickers microhardness of the laser micro/nanostructured surface was measured using a digital microindentation tester.Finally,the corrosion resistance of the laser micro/nanostructured surface in both underwater and marine atmospheric environments was studied by electrochemical experiments and monitoring of the deliquescence process.Results and Discussions There are several key findings for this study.1)The laser micro/nanostructured surface exhibits a unique dual-scale surface pattern comprising various types of random micro/nanoscale structures including protrusions,platelets,pillars and cavities(Fig.3).All micro/nanostructures have a feature size ranging from a few tens of nm to severalμm and are randomly and closely packed in the whole laser-treated area.The surface structure generated in this work is significantly different from the conventional laser-induced periodically arrayed surface structure.2)The surface chemistry analysis shows that functional groups,including—CH_(2)—,—CF_(2)—,and—CF_(3),have been attached to the laser-treated surface,which endows low surface energy(Fig.4).3)The contact angle measurements show that the laser micro/nanostructuring process renders both AISI4130 steel and AA6061 alloy consistent superhydrophobicity within a wide laser processing window provided the laser power intensity is above a certain threshold value(Fig.5).4)Through the laser micro/nanostructuring process,the microhardness of all surfaces processed by different laser power intensities has been increased(Fig.6).By using a laser power intensity of 8.4 GW/cm^(2),the microhardness is enhanced to(211.1±11.0)HV with a 32.7%increase for AISI4130 steel and(126.6±6.1)HV with a 19.9%increase for AA6061 alloy.The increase in microhardness is mainly attributed to the generation of finer grains and the higher density of micro/nanostructures.5)Through electrochemical tests,it is found that the corrosion resistance of the laser micro/nanostructured superhydrophobic surface in an underwater environment has been significantly improved,which is mainly due to the strong capability of the superhydrophobic surface to repel corrosive medium(Fig.7).6)By monitoring the deliquescence process of salt particles on the surface,it has been discovered that the untreated surface can be easily corroded by salt particles,while the laser micro/nanostructured superhydrophobic surface shows its effectiveness as a barrier to inhibit the marine atmospheric corrosion induced by deliquesced NaCl particle(Fig.8 and 9).Conclusions In this work,we develop a novel highly efficient laser-based surface micro/nanostructuring technique for the fabrication of multifunctional surfaces.This technique combines laser surface texturing and chemical etching.First,a nanosecond pulsed laser is used to pre-condition the surface within a specific laser processing window.Second,the laser textured surface is further chemically treated to reveal the micro/nanostructure generated on the surface,and the surface chemistry is also finely tuned to control the surface wettability.The experimental results indicate that the laser-chemical induced micro/nanostructured surface becomes superhydrophobic,and the surface microhardness has also been enhanced.More importantly,the laser-chemical treated surface exhibits significantly improved corrosion resistance in both underwater and marine atmospheric environments.This technique increases the processing rate compared with conventional laser texturing techniques as well as reduces the production and maintenance costs.It is expected that this novel laser surface micro/nanostructuring process will render more practical applications in the area of marine engineering.
作者 王青华 王慧鑫 王占栋 孙桂芳 Wang Qinghua;Wang Huixin;Wang Zhandong;Sun Guifang(School of Mechanical Engineering,Southeast University,Nanjing,Jiangsu 211189,China;Jiangsu Key Laboratory of Micro-Nano Biomedical and Instrument Design and Manufacture,Nanjing,Jiangsu 211189,China;Institute of Agricultural Facilities and Equipment,Jiangsu Academy of Agricultural Sciences,Nanjing,Jiangsu 210014,China)
出处 《中国激光》 EI CAS CSCD 北大核心 2021年第14期180-192,共13页 Chinese Journal of Lasers
基金 东南大学新进教师人才引进启动经费(1102007140)。
关键词 激光技术 化学修饰 超疏水表面 微纳结构 耐腐蚀性 laser technique chemical modification superhydrophobic surface micro/nanostructure corrosion resistance
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