Central Institute of Plastics Engineering and Technology (CIPET), T.V. K Industrial Estate, Guindy, Chennai, 600032, India.
Center for Nanoscience and Technology, Chennai Institute of Technology, Sarathy Nagar, Kundrathur, Chennai, 600069, Tami Nadu, India.
Environ Res. 2022 Aug;211:113095. doi: 10.1016/j.envres.2022.113095. Epub 2022 Mar 10.
The work demonstrates the effective utilization of hybrid Polyurethane - palladium doped zirconium oxide (Pd-ZrO) as innovative carriers for corrosion protection coatings on steel materials. ZrO and Pd-ZrO nanoparticles were successfully synthesized using Photodeposition followed by the hydrothermal synthesis method. The synthesized nanoparticles were then incorporated into the polyurethane matrix and characterized using Fourier-transform infrared spectroscopy and scanning electron microscopy (SEM). The FTIR and SEM confirm the presence of ZrO and Pd-ZrO nanoparticles and their morphologies in polyurethane composites material. The thermogravimetric analysis (TGA) results indicated that the polyurethane matrix remained stable up to 250 °C. At 800 °C, >50% of residues are observed for Pd-ZrO - polyurethane in the TGA analysis, which confirms that the primer and nanoparticles addition enhances the thermal stability of the composite. The water contact angle measurement explains the hydrophobic behavior of nanocomposite modified coatings on a mild steel substrate. It indicates that Pd-ZrO and primer significantly increase the hydrophobicity of polyurethane. The major advantages of developing water-repellent or hydrophobic surfaces open up a world of possibilities for metals and alloys in terms of corrosion prevention. Electrochemical impedance spectroscopy (EIS) and a salt spray test were used to determine the anti-corrosion behavior of the prepared polymer nanocomposites. The polymer nanocomposite coatings have better anti-corrosive capabilities when compared to pure polyurethane. The corrosion protection efficiency increased from 76.63% to 97.57% upon incorporating 2 wt % of Pd-ZrO in the polyurethane matrix. The results confirmed that the modifications on the polyurethane enhanced the hydrophobicity and anti-corrosion properties of the polymer nanocomposite coatings.
这项工作展示了混合聚氨酯-钯掺杂氧化锆(Pd-ZrO)作为钢材腐蚀防护涂层的创新载体的有效利用。ZrO 和 Pd-ZrO 纳米粒子通过光沉积后水热合成法成功合成。然后将合成的纳米粒子掺入聚氨酯基质中,并使用傅里叶变换红外光谱和扫描电子显微镜(SEM)进行表征。FTIR 和 SEM 证实了 ZrO 和 Pd-ZrO 纳米粒子及其在聚氨酯复合材料中的形态的存在。热重分析(TGA)结果表明,聚氨酯基质在 250°C 时保持稳定。在 800°C 时,TGA 分析中观察到 Pd-ZrO-聚氨酯的残留量>50%,这证实了底漆和纳米粒子的添加提高了复合材料的热稳定性。水接触角测量解释了在低碳钢基底上纳米复合材料改性涂层的疏水性行为。它表明 Pd-ZrO 和底漆显著提高了聚氨酯的疏水性。开发疏水性或疏油表面的主要优势为金属和合金在防腐方面开辟了一个充满可能性的世界。电化学阻抗谱(EIS)和盐雾试验用于确定制备的聚合物纳米复合材料的耐腐蚀行为。与纯聚氨酯相比,聚合物纳米复合材料涂层具有更好的耐腐蚀能力。当在聚氨酯基质中掺入 2wt%的 Pd-ZrO 时,腐蚀防护效率从 76.63%增加到 97.57%。结果证实,对聚氨酯的改性提高了聚合物纳米复合材料涂层的疏水性和耐腐蚀性能。