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首页> 外文期刊>RSC Advances >Effect of nanosilica content on the corrosion inhibition of composite coatings of a filled epoxy resin grafted with a hydrophobic fluoroalkylsilane: a dual critical concentrations interpretation
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Effect of nanosilica content on the corrosion inhibition of composite coatings of a filled epoxy resin grafted with a hydrophobic fluoroalkylsilane: a dual critical concentrations interpretation

机译:纳米二氧化硅含量对疏水性氟代烷基硅烷接枝的填充环氧树脂复合涂层腐蚀抑制的影响:双重临界浓度解释

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3,3,3-Trifluoropropylmethyldimethoxysilane (TMDMS) was successfully grafted to molecules of an epoxy resin (EPR) of bisphenol-A origin with an epoxy value of 0.440, i.e. EP44, by transesterification (i.e. alcoholysis) of the TMDMS methoxyls with the EP44 hydroxyls under anhydrous dibutyltin-dilaurate catalysis. Meanwhile, a nanosilica powder was modified with 1,1,1,3,3,3-hexamethyldisilazane (HMDS) via electrophilic substitution of the nanosilica hydroxyls by the HMDS trimethylsilyls to significantly decrease its surface hydroxyls for controlled aggregation. Six coatings, onto an NaOH solution-treated tinplate substrate, of EP44, of the TMDMS-grafted EP44, and of the composites of the TMDMS-grafted EP44 filled with 0.5, 1, 3 and 5 wt% of the HMDS-modified nanosilica were then step-cured mildly with an amino-terminated polyamide from a solution. Owing to the introduction of superhydrophobic trifluoropropyls possibly plus a reduction in the hydrophilic hydroxyl concentration present, the hydrophobicity, evaluated by the water contact-angle, of the EP44 coating increased considerably upon its TMDMS grafting, which then changed little with further addition of the nanosilica. Electrochemical impedance spectroscopy data and simulations revealed that the anticorrosive performance of the TMDMS-grafted EP44 coating, upon immersion into an NaCl solution, was significantly improved compared with the EP44 coating, primarily due to its remarkably enhanced hydrophobic barrier to the water-mediated corrosives (water, NaCl, oxygen, other molecules and ions, etc.). However, the anticorrosion behaviour of the composite coatings was dominated by a corrosion inhibition (i.e. physical barrier) mechanism by the nanosilica filling the pores (free volumes, voids, cracks, etc.) susceptible to the corrosives. As the nanosilica content steadily was raised from 0 to 5 wt%, the corrosion inhibition of the composite coatings first intensified, probably thanks to an enhancement of the filling rate of the pores, and subsequently weakened, presumably due to an increase in the porosity from increased size exclusion of aggregated nanoparticles, and finally improved again possibly owing to a densification of the outside-of-pore barriers of greatly aggregated, size excluded particles, which constituted dual critical concentrations (DCCs) of the nanosilica at 0–0.5 and ~3 wt%, respectively, that gave rise to a maximum followed by a minimum in the corrosion inhibition. To our knowledge, this has been the first work reporting this unique DCCs behaviour for EPRanosilica coatings, which, dictated by a hydrophobic EPR matrix of small porosity as well as a modified nanosilica of controlled aggregation, may universally be extended to the corrosion inhibition of other polymeranoceramic coatings.
机译:3,3,3-三氟丙基甲基二甲氧基硅烷(TMDMS)通过酯交换反应()成功地接枝到了环氧值为0.440的双酚A起源的环氧树脂(EPR)分子上,即 ie EP44。 TMDMS甲氧基与EP44羟基在无水二月桂酸二丁基锡催化下进行醇解。同时,通过用HMDS三甲基甲硅烷基亲电取代纳米二氧化硅羟基,用1,1,1,1,3,3,3-六甲基二硅氮烷(HMDS)改性纳米二氧化硅粉末,以显着降低其表面羟基,聚合。在NaOH溶液处理的马口铁基板上涂有六种涂层,分别是EP44,TMDMS接枝的EP44以及填充有0.5、1、3和5 wt%HMDS改性纳米二氧化硅的TMDMS接枝的EP44的复合材料。然后用氨基端基聚酰胺从溶液中温和地逐步固化。由于引入了超疏水性三氟丙基,可能还会降低存在的亲水性羟基浓度,因此通过水接触角评估的EP44涂层的TMDMS接枝后,其疏水性显着提高,然后随着纳米二氧化硅的加入而变化不大。电化学阻抗谱数据和模拟显示,与EP44涂层相比,TMDMS接枝的EP44涂层在浸入NaCl溶液后的防腐性能得到了显着改善,这主要是由于其显着增强了对水介质腐蚀剂的疏水性屏障(水,氯化钠,氧气,其他分子和离子等。)。然而,复合涂层的防腐性能主要是由纳米二氧化硅填充孔(自由体积,空隙,裂缝,等)的腐蚀抑制( ie 物理屏障)机理所决定的。)易受腐蚀。随着纳米二氧化硅含量稳定地从0 wt%增加到5 wt%,复合涂层的腐蚀抑制作用首先得到增强,这可能是由于孔的填充率提高,随后减弱了,这可能是由于孔隙率的增加所致。增加了聚集纳米颗粒的尺寸排阻,最终又有所改善,这可能是由于高度聚集的,尺寸被排除的颗粒的孔外屏障致密化所致,它构成了纳米二氧化硅在0-0.5和〜3的双重临界浓度(DCCs)重量%,这导致最大值,其次是最小的腐蚀抑制作用。据我们所知,这是第一篇报道EPR /纳米二氧化硅涂层具有独特DCCs行为的工作,这由小孔隙度的疏水性EPR基质以及可控聚集的改性纳米二氧化硅所决定,可以普遍扩展到缓蚀作用其他聚合物/纳米陶瓷涂料。

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