Komartin Raluca Sanda, Balanuca Brindusa, Necolau Madalina Ioana, Cojocaru Anca, Stan Raluca
Department of Organic Chemistry "C. Nenitescu", Faculty of Applied Chemistry and Materials Science, University Politehnica of Bucharest, 1-7 Polizu Street, 011061 Bucharest, Romania.
Advanced Polymer Materials Group, University Politehnica of Bucharest, 1-7 Polizu Street, 011061 Bucharest, Romania.
Polymers (Basel). 2021 Nov 2;13(21):3792. doi: 10.3390/polym13213792.
Epoxidized linseed oil (ELO) and kraft lignin (LnK) were used to obtain new sustainable composites as corrosion protection layers through a double-curing procedure involving UV radiation and thermal curing to ensure homogeneous distribution of the filler. The crosslinked structures were confirmed by Fourier-transform infrared spectrometry (FTIR), by comparative monitorization of the absorption band at 825 cm, attributed to the stretching vibration of epoxy rings. Thermal degradation behavior under N2 gas indicates that the higher LnK content, the better thermal stability of the composites (over 30 °C of Td10% for ELO + 15% LnK), while for the experiment under air-oxidant atmosphere, the lower LnK content (5%) conducted to the more thermo-stable material. Dynamic-mechanic behavior and water affinity of the new materials were also investigated. The increase of the Tg values with the increase of the LnK content (20 °C for the composite with 15% LnK) denote the reinforcement effect of the LnK, while the surface and bulk water affinity were not dramatically affected. All the obtained composites were tested as carbon steel corrosion protection coatings, resulting in significant increase of corrosion inhibition efficiency (IE) of 140-380%, highlighting the great potential of the bio-based ELO-LnK composites as a future perspective for industrial application.
环氧化亚麻籽油(ELO)和硫酸盐木质素(LnK)通过紫外线辐射和热固化的双重固化程序用于获得新型可持续复合材料作为防腐层,以确保填料均匀分布。通过傅里叶变换红外光谱(FTIR),通过比较监测825 cm处归因于环氧环拉伸振动的吸收带,证实了交联结构。在N2气体下的热降解行为表明,LnK含量越高,复合材料的热稳定性越好(ELO + 15% LnK的Td10%超过30°C),而在空气氧化气氛下的实验中,较低的LnK含量(5%)导致材料更热稳定。还研究了新材料的动态力学行为和水亲和力。随着LnK含量的增加,Tg值增加(含15% LnK的复合材料增加20°C)表明LnK的增强作用,而表面和本体水亲和力没有受到显著影响。所有获得的复合材料都作为碳钢防腐涂层进行了测试,导致缓蚀效率(IE)显著提高140 - 380%,突出了生物基ELO-LnK复合材料作为未来工业应用前景的巨大潜力。