Wang Zhongmin, Zhou Xiaoyu, Shang Yongwei, Wang Bingkui, Lu Kecheng, Gan Weijiang, Lai Huajun, Wang Jiang, Huang Caimin, Chen Zongning, Hao Chenggang, Feng Enlang, Li Jiacheng
Guangxi Academy of Sciences, Nanning 530007, China.
Guangxi Key Laboratory of Information Materials, Guilin University of Electronic Technology, Guilin 541004, China.
Materials (Basel). 2024 Apr 17;17(8):1849. doi: 10.3390/ma17081849.
The exceptional corrosion resistance and combined physical and chemical self-cleaning capabilities of superhydrophobic photocatalytic coatings have sparked significant interest among researchers. In this paper, we propose an economical and eco-friendly superhydrophobic epoxy resin coating that incorporates SiO@CuO/HDTMS nanoparticles modified with Hexadecyltrimethoxysilane (HDTMS). The application of superhydrophobic coatings effectively reduces the contact area between the metal surface and corrosive media, leading to a decreased corrosion rate. Additionally, the incorporation of nanomaterials, exemplified by SiO@CuO core-shell nanoparticles, improves the adhesion and durability of the coatings on aluminum alloy substrates. Experimental data from Tafel curve analysis and electrochemical impedance spectroscopy (EIS) confirm the superior corrosion resistance of the superhydrophobic modified aluminum alloy surface compared to untreated surfaces. Estimations indicate a significant reduction in corrosion rate after superhydrophobic treatment. Furthermore, an optical absorption spectra analysis of the core-shell nanoparticles demonstrates their suitability for photocatalytic applications, showcasing their potential contribution to enhancing the overall performance of the coated surfaces. This research underscores the promising approach of combining superhydrophobic properties with photocatalytic capabilities to develop advanced surface modification techniques for enhanced corrosion resistance and functional properties in diverse industrial settings.
超疏水光催化涂层优异的耐腐蚀性以及物理和化学自清洁能力相结合,引发了研究人员的浓厚兴趣。在本文中,我们提出了一种经济环保的超疏水环氧树脂涂层,该涂层包含用十六烷基三甲氧基硅烷(HDTMS)改性的SiO@CuO/HDTMS纳米颗粒。超疏水涂层的应用有效地减少了金属表面与腐蚀性介质之间的接触面积,从而降低了腐蚀速率。此外,以SiO@CuO核壳纳米颗粒为例的纳米材料的加入,提高了涂层在铝合金基材上的附着力和耐久性。塔菲尔曲线分析和电化学阻抗谱(EIS)的实验数据证实,与未处理的表面相比,超疏水改性铝合金表面具有优异的耐腐蚀性。估计表明超疏水处理后腐蚀速率显著降低。此外,对核壳纳米颗粒的光吸收光谱分析表明它们适用于光催化应用,展示了它们对提高涂层表面整体性能的潜在贡献。这项研究强调了将超疏水性能与光催化能力相结合的有前景的方法,以开发先进的表面改性技术,在不同工业环境中增强耐腐蚀性和功能特性。