Superhydrophobicity and high corrosion resistance of secondary alkane sulphonate (SAS) modified Li-Al LDH film in-situ grown on aluminum alloy

Xinyu Pan , Xiaohu Luo , Ji Li , Xiaoping Zhang , Xihong Yu , Chengliang Zhou , Bo Chen , Yali Liu
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引用次数: 3

Abstract

In this work, a secondary alkane sulfonate (SAS) modified Li-Al LDH film (SLDH) with high corrosion resistance by a simple in-situ growth on aluminium alloy 6N01. Water contact angle (WCA) and scanning electron microscopy (SEM) revealed that the film was fabricated with a flower-shaped microstructure and highly superhydrophobic performance (WCA=153°). XRD patterns and FTIR spectrum revealed that SAS species were intercalated into SLDH. X-ray photoelectron spectroscopy (XPS) analysis indicated that SLDH was mainly composed of C, O, S, Al and Li. Potentiodynamic polarization (PDP) curves proved that SLDH (icorr = 9.169 × 10−8 A/cm2) provided pronounced protection than that of CLDH (icorr = 9.011 × 10−7 A/cm2), and electrochemical impedance spectra (EIS) demonstrated that corrosion resistance was improved. Neutral salt spray (NSS) tests exhibited that compared to CLDH with severe pitting corrosion, SLDH was virtually undamaged after 360 h exposure. Based on the above results, a sound inhibition mechanism of SLDH was inferred to be a dual effect, including the barrier action of superhydrophobic surface and the ion exchange of intercalated SAS with aggressive chlorides. In conclusion, the special divergent long-chain structure of SAS with low surface energy results in the superhydrophobicity of SLDH.

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铝合金上原位生长仲烷磺酸盐(SAS)改性Li-Al-LDH膜的超疏水性和高耐蚀性
本工作通过在6N01铝合金上简单原位生长的方法,制备了一种仲烷磺酸盐(SAS)改性的高耐蚀性Li-Al-LDH膜。水接触角(WCA)和扫描电子显微镜(SEM)显示,该膜具有花朵状微观结构和高度超疏水性能(WCA=153°)。XRD图谱和FTIR光谱显示SAS物种嵌入SLDH中。X射线光电子能谱(XPS)分析表明,SLDH主要由C、O、S、Al和Li组成。电位动态极化(PDP)曲线证明,SLDH(icorr=9.169×10−8 A/cm2)比CLDH(icorr=9.11×10−7 A/cm2)具有明显的保护作用,电化学阻抗谱(EIS)表明其耐腐蚀性有所提高。中性盐雾(NSS)试验表明,与具有严重点蚀的CLDH相比,SLDH在暴露360小时后几乎没有损坏。基于上述结果,SLDH的良好抑制机制被推断为双重作用,包括超疏水表面的阻挡作用和插层SAS与侵蚀性氯化物的离子交换。总之,低表面能SAS特殊的发散长链结构导致了SLDH的超疏水性。
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