Uzochukwu Ikechukwu N, Arukalam Innocent O, Njoku Chigoziri N
Advanced Functional Materials/Corrosion Research Group, Africa Centre of Excellence in Future Energies and Electrochemical Systems (ACE-FUELS), Federal University of Technology Owerri (FUTO), Owerri, Nigeria.
Department of Polymer and Textile Engineering, Federal University of Technology, P.M.B, Owerri, 1526, Nigeria.
J Mol Model. 2023 Mar 27;29(4):114. doi: 10.1007/s00894-023-05517-4.
The anticorrosion performance of silane-modified chitosan/epoxy primer coatings was evaluated using quantum chemical computations (QCC) and molecular dynamics simulation (MDS) techniques. The objective was to appraise the molecular/atomistic level performance of silane-modified chitosan/epoxy primer coating system on mild steel in saline water to be able to design robust anticorrosion epoxy nanocomposite primer coating for marine application. The QCC showed that quantum parameters for (3-aminopropyl) trimethoxy silane-modified chitosan nanocluster (AMCN) are optimum and therefore correspond to high corrosion protective capability. The adsorption energies (E) for AMCN/epoxy, tetraethoxysilane-modified chitosan/epoxy, chitosan-modified epoxy, and unmodified epoxy coatings were found to be - 3094.65, - 2,630.00, - 2,305.77, and - 1,189.33 kcal/mol, respectively. The high negative value of E indicates the coating molecules interacted and adsorbed strongly on the mild steel surface. Hence, AMCN/epoxy coating is potentially most corrosion-resistant than the others. Further, it is established that shorter bond length corresponds to higher bond strength and therefore indicates chemical interaction. Thus, the radial distribution function showed the bond lengths between atoms of the AMCN and mild steel surfaces were shorter than those of other molecules. Overall, AMCN/epoxy coating molecules possess good anticorrosion properties and therefore would perform well if deployed for service in saline environments.
采用量子化学计算(QCC)和分子动力学模拟(MDS)技术评估了硅烷改性壳聚糖/环氧底漆涂层的防腐性能。目的是评估硅烷改性壳聚糖/环氧底漆涂层体系在海水中对低碳钢的分子/原子水平性能,以便能够设计出用于海洋应用的坚固防腐环氧纳米复合底漆涂层。QCC结果表明,(3-氨丙基)三甲氧基硅烷改性壳聚糖纳米簇(AMCN)的量子参数是最佳的,因此具有高腐蚀防护能力。发现AMCN/环氧、四乙氧基硅烷改性壳聚糖/环氧、壳聚糖改性环氧和未改性环氧涂层的吸附能(E)分别为-3094.65、-2630.00、-2305.77和-1189.33 kcal/mol。E的高负值表明涂层分子在低碳钢表面强烈相互作用并吸附。因此,AMCN/环氧涂层可能比其他涂层更耐腐蚀。此外,已确定较短的键长对应较高的键强度,因此表明存在化学相互作用。因此,径向分布函数表明AMCN与低碳钢表面原子之间的键长比其他分子的键长短。总体而言,AMCN/环氧涂层分子具有良好的防腐性能,因此如果在含盐环境中使用,性能会很好。