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具有优异防腐性能的二维层状聚酰亚胺/腰果酚基苯并恶嗪铜聚合物复合涂层。

Two-dimensional lamellar polyimide/cardanol-based benzoxazine copper polymer composite coatings with excellent anti-corrosion performance.

作者信息

Chen Xiangyang, Zhang Xinmei, Chen Jipeng, Bai Weibin, Zheng Xiaoxiao, Lin Qi, Lin Fengcai, Xu Yanlian

机构信息

College of Chemistry and Materials, Fujian Normal University Fuzhou 350007 PR China.

College of Materials Science and Engineering, Huaqiao University Xiamen 361021 China.

出版信息

RSC Adv. 2022 Apr 7;12(17):10766-10777. doi: 10.1039/d1ra08844k. eCollection 2022 Mar 31.

Abstract

The economic loss and environmental damage caused by metal corrosion is irreversible. Thus, effective methods, such as coating technologies are used to protect metal surfaces from corrosion. In this work, cardanol-based benzoxazine (CB) was synthesized by a solvent-free method using cardanol, paraformaldehyde and -octylamine. A cardanol-based benzoxazine copper polymer (CBCP) with good mechanical properties was then prepared by CuCl catalysis and can be cured at room temperature. Subsequently, polyimide corrosion inhibitors with a two-dimensional sheet structure (pyromellitic dianhydride polyimide (PDPI) and 1,4,5,8-naphthalene tetracarboxylic dianhydride polyimide (NDPI)) were designed and prepared. Lastly, PDPI or NDPI was mixed with CBCP to obtain two-dimensional lamellar polyimide/cardanol-based benzoxazine copper polymer composite coatings. The Tafel curves and electrochemical impedance spectroscopy (EIS) measurements showed composite coatings with good corrosion resistance in different corrosive media. Compared to CBCP coating, the anticorrosion performance of the composite coatings improved obviously, especially the coating obtained with 0.5 wt% PDPI. It exhibits a high polarization resistance (3.874 × 10 Ω), a high protection efficiency (99.99% and 97.98%) and low corrosion rate (3.376 × 10 mm year). This work suggested a facile and eco-friendly strategy for preparing bio-based anticorrosive composite coatings from low cost and abundant cardanol and polyimide corrosion inhibitors, which will significantly promote their application in metal anticorrosion.

摘要

金属腐蚀所造成的经济损失和环境破坏是不可逆转的。因此,人们采用了诸如涂层技术等有效方法来保护金属表面免受腐蚀。在这项工作中,通过无溶剂法,使用腰果酚、多聚甲醛和正辛胺合成了腰果酚基苯并恶嗪(CB)。然后通过氯化铜催化制备了具有良好机械性能且可在室温下固化的腰果酚基苯并恶嗪铜聚合物(CBCP)。随后,设计并制备了具有二维片状结构的聚酰亚胺缓蚀剂(均苯四甲酸二酐聚酰亚胺(PDPI)和1,4,5,8 - 萘四甲酸二酐聚酰亚胺(NDPI))。最后,将PDPI或NDPI与CBCP混合,得到二维层状聚酰亚胺/腰果酚基苯并恶嗪铜聚合物复合涂层。塔菲尔曲线和电化学阻抗谱(EIS)测量结果表明,复合涂层在不同腐蚀介质中具有良好的耐腐蚀性。与CBCP涂层相比,复合涂层的防腐性能明显提高,尤其是含0.5 wt% PDPI的涂层。它具有高极化电阻(3.874×10Ω)、高保护效率(99.99%和97.98%)以及低腐蚀速率(3.376×10毫米/年)。这项工作提出了一种简便且环保的策略,可从低成本且丰富的腰果酚和聚酰亚胺缓蚀剂制备生物基防腐复合涂层,这将显著促进它们在金属防腐中的应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3f7d/8988169/19bd67a9b6a2/d1ra08844k-s1.jpg

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