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基于电喷雾固定纳米ZrV的壳聚糖生物混合微胶囊用于自修复环氧涂层的开发。

Biohybrid microcapsules based on electrosprayed CS-immobilized nanoZrV for self-healing epoxy coating development.

作者信息

Uko Lydia, Elkady Marwa

机构信息

Chemical and Petrochemicals Engineering Department, Egypt-Japan University of Science and Technology Alexandria 21934 Egypt

Fabrication Technology Department, Advanced Technology and New Materials Research Institute (ATNMRI), City of Scientific Research and Technology Applications Alexandria 21934 Egypt.

出版信息

RSC Adv. 2024 Jun 10;14(26):18467-18477. doi: 10.1039/d4ra02289k. eCollection 2024 Jun 6.

Abstract

In this work, zirconium vanadate nanoparticles were immobilized into chitosan using a facile electrospraying technique to produce CS-ZrV hybrid microcapsules for the development of a self-healing coating. Upon assessment, hybrid microcapsules possessed desirable properties with a mean particle size of 319 μm, maintaining good thermal stability of ∼55% at 700 °C, and were subsequently incorporated into an epoxy resin to develop a biocompatible self-healing coating, CZVEx, for carbon steel corrosion protection. Scratched samples of self-healing and control coatings were analyzed in a corrosion medium of 3.5 wt% aqueous NaCl. SEM images of the scratched coating sample, after days of immersion, revealed healing of defects through the appearance of an epoxide gel-like substance due to the release of polymeric vanadate that reacted with corrosion agents, resulting in polymerization of vanadium hydrates and subsequent self-healing, validated by the proposed mechanism of self-healing. Electrochemical impedance spectroscopy analysis further confirmed CZVEx coating possessed excellent self-healing capabilities through a significant impedance rise from 4.48 × 10 to 5.52 × 10 (ohm cm) between the 7th and 14th day of immersion. Furthermore, comparative polarization assessment of coating samples with/without defects indicated the accuracy of EIS for self-healing analysis, and showed the sample with no defect was only 2.6 times more corrosion resistant than the scratched coating, as against bare steel substrate that was 22 times less resistant, revealing superior self-healing anticorrosion properties of the coating.

摘要

在这项工作中,采用简便的电喷雾技术将钒酸锆纳米颗粒固定在壳聚糖中,以制备用于开发自修复涂层的CS-ZrV混合微胶囊。经评估,混合微胶囊具有理想的性能,平均粒径为319μm,在700℃时保持约55%的良好热稳定性,随后将其掺入环氧树脂中,以开发用于碳钢腐蚀防护的生物相容性自修复涂层CZVEx。在3.5 wt%的NaCl水溶液腐蚀介质中分析了自修复涂层和对照涂层的划痕样品。浸泡数天后,划痕涂层样品的SEM图像显示,由于聚合钒酸盐的释放,与腐蚀剂发生反应,出现环氧凝胶状物质,从而使缺陷得到修复,导致钒水合物聚合并随后实现自修复,这一点已通过所提出的自修复机制得到验证。电化学阻抗谱分析进一步证实,CZVEx涂层在浸泡第7天至第14天之间,阻抗从4.48×10显著升至5.52×10(欧姆·厘米),具有优异的自修复能力。此外,对有/无缺陷涂层样品的比较极化评估表明了EIS用于自修复分析的准确性,并且表明无缺陷样品的耐腐蚀性仅比划痕涂层高2.6倍,而裸钢基材的耐腐蚀性则低22倍,这表明该涂层具有优异的自修复防腐性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e8e2/11163269/10b6e8a6e8d0/d4ra02289k-f1.jpg

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