A novel smart coating with hexacyanoferrate intercalated layered double hydroxides nanoadditive for early detection of carbon steel corrosion

IF 2.5 Q3 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Frontiers in chemical engineering Pub Date : 2023-04-25 DOI:10.3389/fceng.2023.1145049
A. Sushkova, R. Montes, Tiago F. Paulino, Isabel Sousa, C. Neves, M. Ferreira, J. Tedim
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Abstract

The detection of corrosion at early stages could increase the service life of metal-based infrastructures in a cost-effective manner. Despite the recent progress in “smart” self-reporting corrosion sensing coatings, the development of environmentally friendly systems appropriate for steel substrate used in offshore applications remains a relevant challenge. In this study, a novel smart corrosion sensing coating, based on hexacyanoferrate intercalated Mg-Al LDH nanoadditive, was developed, aiming at the detection of early-stage corrosion of carbon steel. The detection mechanism is based on the ability of hexacyanoferrate ions to react with iron cations generated during the corrosion process, giving rise to a colorimetric signal, while LDH carriers provide a controlled release of active ions under corrosion conditions. The sensing nanoadditive was embedded into a commercial pigment-free water-based acrylic polyurethane coating. The nanomaterial was characterized structurally (XRD) and morphologically (STEM). The compatibility of the additive with the polymer formulation and its influence on the resulting coating performance was investigated in terms of rheological behavior, structure (FTIR), morphology (SEM/EDS), thermal (TGA, DSC) and mechanical (adhesion, hardness) properties. The corrosion protection ability of the coating was evaluated via EIS, while the sensing functionality was analyzed by visual analysis of the surface. The developed coating successfully detects early-stage corrosion of steel substrate at a lab scale, in conditions relevant to the use of metallic structures in offshore applications, demonstrating a correlation between the level of material degradation and the spectroscopic signal associated with the presence of the LDH functional nanoadditive. Furthermore, the observed decrease in coating barrier properties, caused by the presence of LDH, was overcome by the subsequent development of a multilayer coating system. Two different topcoats (epoxy- and polyurethane-based) were surveyed for this purpose, showing an improvement in the coating barrier properties without influencing the corrosion detection functionality of the sensing layer. The results were successfully validated by standard salt spray tests. The multilayer approach opens up the possibility to model coatings with different characteristics for various operating conditions.
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一种用于碳钢腐蚀早期检测的新型智能涂层——六氰高铁酸盐嵌入层状双氢氧化物纳米添加剂
在早期阶段检测腐蚀可以以成本效益高的方式延长金属基础设施的使用寿命。尽管最近在“智能”自报告腐蚀传感涂层方面取得了进展,但开发适用于海上应用的钢基材的环保系统仍然是一个相关的挑战。本研究开发了一种新型的智能腐蚀传感涂层,该涂层基于六氰高铁酸盐嵌入Mg-Al-LDH纳米添加剂,旨在检测碳钢的早期腐蚀。检测机制基于六氰高铁酸盐离子与腐蚀过程中产生的铁阳离子反应的能力,产生比色信号,而LDH载体在腐蚀条件下提供活性离子的可控释放。将传感纳米添加剂嵌入商业无颜料的水性丙烯酸聚氨酯涂层中。对纳米材料进行了结构表征(XRD)和形态表征(STEM)。从流变行为、结构(FTIR)、形态(SEM/EDS)、热性能(TGA、DSC)和机械性能(附着力、硬度)等方面研究了添加剂与聚合物配方的相容性及其对涂层性能的影响。通过EIS评估涂层的防腐能力,同时通过表面的视觉分析分析传感功能。所开发的涂层在与海上应用中使用金属结构相关的条件下,在实验室规模上成功检测到钢基体的早期腐蚀,证明了材料降解水平与LDH功能纳米添加剂存在相关的光谱信号之间的相关性。此外,观察到的由LDH的存在引起的涂层阻隔性能的降低被随后开发的多层涂层系统所克服。为此,对两种不同的面漆(环氧基和聚氨酯基)进行了调查,结果表明,在不影响传感层腐蚀检测功能的情况下,涂层阻隔性能得到了改善。通过标准盐雾试验成功验证了结果。多层方法为在各种操作条件下对具有不同特性的涂层进行建模开辟了可能性。
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CiteScore
3.50
自引率
0.00%
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0
审稿时长
13 weeks
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