Rasitha T P, Vanithakumari S C, George R P, Philip John
Corrosion Science and Technology Division, Metallurgy and Materials Group, Indira Gandhi Centre for Atomic Research, Homi Bhabha National Institute , Indira Gandhi Centre for Atomic Research , Kalpakkam - 603 102 , India.
Langmuir. 2019 Oct 1;35(39):12665-12679. doi: 10.1021/acs.langmuir.9b02045. Epub 2019 Sep 16.
The corrosion of ferritic steel, a widely used structural material in the power and nuclear industries exposed to humid coastal environments, is a major concern. Here, we present a template-free one-step electrodeposition method for the fabrication of a robust superhydrophobic (SHP) coating on ferritic steel with excellent mechanical stability, enhanced corrosion resistance, and self-cleaning ability. By varying the electrodeposition time and potential, the micronanoscale hierarchical surface structures were optimized. The coated SHP surfaces were characterized by water contact angle measurement, Fourier transform infrared spectroscopy (FTIR), and scanning electron microscopy (SEM). The coated surfaces showed a characteristic cauliflower morphology of cerium myristate with micronanoscale features. The maximum water contact angle achieved was 162.8 ± 2.4°. Shear abrasion testing showed good mechanical durability for the prepared coatings. The as-prepared SHP coating showed a five order reduction in corrosion current density (4.14 × 10 A/cm) and corrosion rate (4.63 × 10 mm/y) as compared to the bare sample. Further, a six order enhancement in the polarization resistance (1.55 × 10 Ω) was also observed in agressive chloride solution, which confirmed the excellent corrosion resistance of the SHP coating. Electrochemical impedance spectroscopy (EIS) studies showed a high impedance modulus for SHP coated surfaces due to the presence of a compact protective layer of cerium myristate. This observed impedance modulus of the SHP surface was approximately four orders higher than the reported value on magnesium alloys. This study provides a new platform for obtaining a robust, mechanically stable, and corrosion resistant SHP coating with a self-cleaning ability on ferritic steel substrates that may be adapted for a range of materials in practical applications.
铁素体钢是电力和核工业中广泛使用的结构材料,在潮湿的沿海环境中会发生腐蚀,这是一个主要问题。在此,我们提出一种无模板一步电沉积方法,用于在铁素体钢上制备具有优异机械稳定性、增强耐腐蚀性和自清洁能力的坚固超疏水(SHP)涂层。通过改变电沉积时间和电位,优化了微米纳米级分级表面结构。通过水接触角测量、傅里叶变换红外光谱(FTIR)和扫描电子显微镜(SEM)对涂覆的SHP表面进行了表征。涂覆表面呈现出具有微米纳米级特征的肉豆蔻酸铈菜花状形态。实现的最大水接触角为162.8±2.4°。剪切磨损测试表明所制备的涂层具有良好的机械耐久性。与裸样相比,所制备的SHP涂层的腐蚀电流密度(4.14×10 A/cm)和腐蚀速率(4.63×10 mm/y)降低了五个数量级。此外,在腐蚀性氯化物溶液中还观察到极化电阻(1.55×10 Ω)提高了六个数量级,这证实了SHP涂层具有优异的耐腐蚀性。电化学阻抗谱(EIS)研究表明,由于存在致密的肉豆蔻酸铈保护层,SHP涂覆表面具有高阻抗模量。观察到的SHP表面的阻抗模量比镁合金上报道的值高约四个数量级。本研究为在铁素体钢基体上获得具有自清洁能力的坚固、机械稳定和耐腐蚀的SHP涂层提供了一个新平台,该涂层可适用于实际应用中的一系列材料。