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Towards lightweight nanocomposite coatings for corrosion inhibition: Graphene, carbon nanotubes, and nanostructured magnesium as case studies.

机译:致力于减轻腐蚀的轻质纳米复合涂料:案例研究石墨烯,碳纳米管和纳米结构镁。

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摘要

The field of nanocomposites is a burgeoning area of research due to the interest in the remarkable properties which can be achieved through their use in a variety of applications, including corrosion resistant coatings. Lightweighting is of increasing importance in the world today due to the ever growing push towards energy efficiency and the green movement and in recent years there has been a vast amount of research performed in the area of developing lightweight nanocomposites for corrosion inhibition. Many new composite materials have been developed through the use of newly developed nanomaterials (including carbonaceous and metallic constituents) and their specialized incorporation in the coating matrix materials.;We start with a general review on the development of hybrid nanostructured composites for corrosion protection of base metals from a sustainability perspective in Chapter 1. This review demonstrates the ever swelling requirements for a paradigm shift in the way that we protect metals against corrosion due to the costs and environmental concerns that exist with currently used technology. In Chapter 2, we delve into the much required understanding of graphene oxide and reduced graphene oxide through near-edge X-ray absorption fine structure (NEXAFS) spectroscopy measurements to elucidate information about the electronic structure upon incorporation of nitrogen within the structure. For successful integration of the carbonaceous nanomaterials into a composite coating, a full swath of knowledge is necessary. Within this work we have shown that upon chemical defunctionalization of graphene oxide to reduced graphene oxide by means of hydrazine treatment, nitrogen is incorporated into the structure in the form of a pyrazole ring.;In Chapter 3, we demonstrate that by way of in situ polymerization, graphene and multiwalled carbon nanotubes can be incorporated within a polymer (polyetherimide, PEI) matrix. Two systems have been developed including graphene and multiwalled carbon nanotubes that act synergistically at a concentration of 2 wt.% each along with graphene at 20 wt.%. The in situ polymerization technique allows for well dispersed carbon nanomaterials within the polymer matrix, which is always a necessary requirement for success as a multifunctional composite coating. After testing in harsh corrosive brine environments these coatings outperformed the polymer by itself and even Zn galvanized steel, lowering the estimated corrosion rate by several orders of magnitude.;Chapter 4 displays the possible uses of functionalized carbon nanomaterials in the design of a nanocomposite for corrosion resistance. In this work we establish a method of crosslinking and curing of the polymer matrix using the carbon nanofiller materials as a curing agent through the knowledge partially developed from work outlined in Chapter 2. Here we have used the native functional groups (hydroxyls and carboxylic acids) on graphene oxide and oxidized multiwalled carbon nanotubes to initiate the curing reaction with a well-known commercially available and commonly used epoxy resin. This technology allows for the chemical integration of the nanofiller within the polymer matrix, ensuring excellent dispersion, and also removing the need for often toxic curing agents. The nanocomposites created here have also been tested for their corrosion resistant properties.;Concluding with Chapter 5, we exploit some of our previous work on the development of nanostructured magnesium for use in corrosion resistant coatings based on Mg-rich primer technology. It was shown that Mg nanoplatelets allow for a much increased surface area for interaction with the polymer matrix, leading to excellent property enhancement at a significantly reduced pigment volume concentration and coating thickness. These enhancements lead to less material being used, lighter/thinner coatings, and improved performance. These nano Mg-rich primer formulations were shown to protect the underlying steel substrates from corrosion upon breakdown, in the form of a scratch to the metal surface, of the coating; preferentially oxidizing before the iron in steel. The coatings also were found to reduce the corrosion rate by up to 4 orders of magnitude.
机译:纳米复合材料领域是新兴的研究领域,这是因为人们对通过在包括防腐涂层在内的各种应用中使用可以实现的卓越性能感兴趣。由于对能源效率和绿色运动的日益增长的推动,当今轻量化在当今世界中的重要性日益提高。近年来,在开发轻型纳米复合材料以抑制腐蚀方面进行了大量研究。通过使用新开发的纳米材料(包括碳质和金属成分)并将它们专门掺入涂料基体材料中,已经开发了许多新的复合材料。我们首先对用于基础防腐的混合纳米结构复合材料的开发进行了综述。第1章从可持续性的角度对金属进行了评估。该评论表明,由于当前使用的技术存在成本和环境问题,我们需要保护金属免遭腐蚀的方式发生范式转变的要求不断提高。在第2章中,我们通过近边缘X射线吸收精细结构(NEXAFS)光谱学测量深入研究了对氧化石墨烯和还原氧化石墨烯的迫切需要的理解,以阐明有关氮在结构中结合时电子结构的信息。为了将碳质纳米材料成功整合到复合涂层中,需要全面的知识。在这项工作中,我们证明了在通过肼处理将氧化石墨烯化学还原为氧化石墨烯后,氮以吡唑环的形式掺入结构中;在第三章中,我们通过原位证明了这一点。聚合反应中,可以将石墨烯和多壁碳纳米管并入聚合物(聚醚酰亚胺,PEI)基体内。已经开发出两个系统,包括石墨烯和多壁碳纳米管,它们以各自2wt。%的浓度与石墨烯以20wt。%协同作用。原位聚合技术允许在聚合物基体内充分分散碳纳米材料,而这一直是成功获得多功能复合涂层的必要条件。在苛刻的腐蚀性盐水环境中进行测试后,这些涂层本身甚至超过了锌镀锌钢,均优于聚合物,从而将估计的腐蚀速率降低了几个数量级。第4章展示了功能化碳纳米材料在纳米复合材料腐蚀设计中的可能用途抵抗性。在这项工作中,我们通过从第2章概述的工作中获得的部分知识,建立了使用碳纳米填料材料作为固化剂的聚合物基体的交联和固化方法。在这里,我们使用了天然官能团(羟基和羧酸)在氧化石墨烯和氧化的多壁碳纳米管上进行氧化,以引发与众所周知的市售和常用环氧树脂的固化反应。这项技术可以使纳米填料在聚合物基质中进行化学整合,确保出色的分散性,并且无需使用通常有毒的固化剂。在此创建的纳米复合材料还经过了耐腐蚀性能测试。结束于第5章,我们利用了以前在基于富镁底漆技术的耐腐蚀涂料中开发纳米结构化镁的一些工作。结果表明,Mg纳米片允许与聚合物基体相互作用的表面积大大增加,从而在显着降低颜料体积浓度和涂层厚度的情况下,实现了优异的性能增强。这些增强功能导致使用的材料更少,涂层更轻/更薄,性能得到改善。这些纳米富含Mg的底漆配方被证明可以保护底层的钢基体,防止其在击穿时以金属表面划痕的形式被腐蚀。在钢中的铁之前优先氧化。还发现该涂层最多可将腐蚀速率降低4个数量级。

著录项

  • 作者单位

    State University of New York at Buffalo.;

  • 授予单位 State University of New York at Buffalo.;
  • 学科 Chemistry Physical.;Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 195 p.
  • 总页数 195
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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