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个人信息Personal Information
教授
博士生导师
硕士生导师
主要任职:创新创业学院院长
性别:男
出生日期:1981-12-01
毕业院校:大连理工大学
学位:博士
所在单位:创新创业学院
学科:机械制造及其自动化. 材料表面工程. 等离子体物理. 生物医学工程
办公地点:机械新大楼
联系方式:0411-84706959
电子邮箱:xinliu@dlut.edu.cn
Fabrication of superhydrophobic surfaces on Mg alloy substrates via primary cell corrosion and fluoroalkylsilane modification
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论文类型:期刊论文
发表时间:2013-11-01
发表刊物:MATERIALS AND CORROSION-WERKSTOFFE UND KORROSION
收录刊物:SCIE、EI、Scopus
卷号:64
期号:11
页面范围:979-987
ISSN号:0947-5117
关键字:magnesium alloy; primary cell corrosion; superhydrophobic surface
摘要:The present work reports a simple and safe two-step process to render magnesium (Mg) alloy surfaces superhydrophobic via primary cell corrosion and subsequently cover it with a fluoroalkylsilane (FAS) film. The surfaces were characterized by scanning electron microscopy (SEM), optical microscopy, energy-dispersive X-ray spectroscopy (EDS), Fourier-transform infrared spectrophotometry (FTIR), X-ray diffraction (XRD), and optical contact angle measurements. The power generated via the primary cell corrosion of copper and Mg alloys was also measured using a digital multimeter. The results show that micro/nanometer-scale binary rough structures and an FAS film with a low surface energy were present on the Mg alloy surfaces, both of which confer good superhydrophobicity with a water contact angle of 162.8 degrees and a tilting angle of 2 degrees. The micro/nanometer-scale binary rough structures consisted of micrometer-scale grains, cluster-like structures composed of nanometer-scale needles, and network-like structures composed of nanometer-scale sheets. Superhydrophobicity was analyzed by the Cassie-Baxter theory. Findings show that only about 6.3% of the water surface was in contact with the Mg alloy substrates, while the remaining 93.7% was in contact with the air cushion. The unique advantage of the proposed method is that power can be generated during the machining process of the superhydrophobic surfaces on the Mg alloy substrates.