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首页> 外文期刊>ACS applied materials & interfaces >A Comparative Study on Graphene Oxide and Carbon Nanotube Reinforcement of PMMA-Siloxane-Silica Anticorrosive Coatings
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A Comparative Study on Graphene Oxide and Carbon Nanotube Reinforcement of PMMA-Siloxane-Silica Anticorrosive Coatings

机译:PMMA-硅氧烷-二氧化硅防腐涂料中氧化石墨烯和碳纳米管增强的比较研究

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Carbon nanotubes (CNTs) and graphene oxide (GO) have been used to reinforce PMMA-siloxane-silica nanocomposites considered to be promising candidates for environmentally compliant anticorrosive coatings. The organic inorganic hybrids were prepared by benzoyl peroxide (BPO)-induced polymerization of methyl methacrylate (MMA) covalently bonded through 3-(trimethoxysilyl)propyl methacrylate (MPTS) to silica domains formed by hydrolytic condensation of tetraethoxysilane (TEOS). Single-walled carbon nanotubes and graphene oxide nanosheets were dispersed by surfactant addition and in a water/ethanol solution, respectively. These were added to PMMA-siloxane-silica hybrids at a carbon (CNT or GO) to silicon (TEOS and MPTS) molar ratio of 0.05% in two different matrices, both prepared at BPO/MMA molar ratios of 0.01 and 0.05. Atomic force microscopy and scanning electron microscopy showed very smooth, homogeneous, and defect-free surfaces of approximately 3-7 mu m thick coatings deposited onto A1020 carbon steel by dip coating. Mechanical testing and thermogravimetric analysis confirmed that both additives CNT and GO improved the scratch resistance, adhesion, wear resistance, and thermal stability of PMMA-siloxane-silica coatings. Results of electrochemical impedance spectroscopy in 3.5% NaCl solution, discussed in terms of equivalent circuits, showed that the reinforced hybrid coatings act as a very efficient anticorrosive barrier with an impedance modulus up to 1 G Omega cm(2), approximately 5 orders of magnitude higher than that of bare carbon steel. In the case of GO addition, the high corrosion resistance was maintained for more than 6 months in saline medium. These results suggest that both carbon nanostructures can be used as structural reinforcement agents, improving the thermal and mechanical resistance of high performance anticorrosive PMMA-siloxane-silica coatings and thus extending their application range to abrasive environments.
机译:碳纳米管(CNT)和氧化石墨烯(GO)已用于增强PMMA-硅氧烷-二氧化硅纳米复合材料,这些材料被认为是符合环保要求的防腐涂料的候选材料。通过过氧化苯甲酰(BPO)诱导的甲基丙烯酸甲酯(MMA)的聚合反应制备有机无机杂化物,甲基丙烯酸甲酯通过3-(三甲氧基甲硅烷基)丙基甲基丙烯酸酯(MPTS)与四乙氧基硅烷(TEOS)水解缩合形成的二氧化硅结构域共价键合。通过添加表面活性剂将单壁碳纳米管和氧化石墨烯纳米片分别分散在水/乙醇溶液中。将它们在两种不同的基质中以0.05%的碳(CNT或GO)与硅(TEOS和MPTS)的摩尔比添加到PMMA-硅氧烷-二氧化硅杂化物中,两者均以0.01和0.05的BPO / MMA摩尔比制备。原子力显微镜和扫描电子显微镜显示非常光滑,均匀且无缺陷的表面,通过浸涂将约3-7微米厚的涂层沉积在A1020碳钢上。机械测试和热重分析证实,添加剂CNT和GO均可改善PMMA-硅氧烷-二氧化硅涂层的耐刮擦性,粘合性,耐磨性和热稳定性。在等效电路中讨论的在3.5%NaCl溶液中的电化学阻抗谱结果表明,增强的混合涂层可作为一种非常有效的防腐屏障,其阻抗模量高达1 G Omega cm(2),约为5个数量级高于裸碳钢。在添加GO的情况下,高耐腐蚀性在盐水介质中保持超过6个月。这些结果表明,两种碳纳米结构均可用作结构增强剂,从而改善了高性能防腐PMMA-硅氧烷-二氧化硅涂层的耐热性和机械耐受性,从而将其应用范围扩展到了磨蚀性环境。

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