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Superiority of Graphene over Polymer Coatings for Prevention of Microbially Induced Corrosion

机译:石墨烯在防止微生物引起的腐蚀方面优于聚合物涂层

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摘要

Prevention of microbially induced corrosion (MIC) is of great significance in many environmental applications. Here, we report the use of an ultra-thin, graphene skin (Gr) as a superior anti-MIC coating over two commercial polymeric coatings, Parylene-C (PA) and Polyurethane (PU). We find that Nickel (Ni) dissolution in a corrosion cell with Gr-coated Ni is an order of magnitude lower than that of PA and PU coated electrodes. Electrochemical analysis reveals that the Gr coating offers ~10 and ~100 fold improvement in MIC resistance over PU and PA coatings respectively. This finding is remarkable considering that the Gr coating (1–2 nm) is ~25 and ~4000 times thinner than the PA (40–50 nm), and PU coatings (20–80 μm), respectively. Conventional polymer coatings are either non-conformal when deposited or degrade under the action of microbial processes, while the electro-chemically inert graphene coating is both resistant to microbial attack and is extremely conformal and defect-free. Finally, we provide a brief discussion regarding the effectiveness of as-grown vs. transferred graphene films for anti-MIC applications. While the as-grown graphene films are devoid of major defects, wet transfer of graphene is shown to introduce large scale defects that make it less suitable for the current application.
机译:在许多环境应用中,防止微生物引起的腐蚀(MIC)具有重要意义。在这里,我们报道了使用超薄石墨烯蒙皮(Gr)作为优于两种商用聚合物涂料(Parylene-C(PA)和聚氨酯(PU))的抗MIC涂料。我们发现,在具有Gr涂层的Ni的腐蚀池中,镍(Ni)的溶解度比PA和PU涂层的电极低一个数量级。电化学分析表明,与PU和PA涂层相比,Gr涂层的MIC电阻分别提高了约10倍和〜100倍。考虑到Gr涂层(1-2nm)比PA(40-50nm)和PU涂层(20-80μm)分别薄25〜4000倍,这一发现是非凡的。常规的聚合物涂层在沉积时不是保形的,或者在微生物过程的作用下会降解,而电化学惰性的石墨烯涂层既可以抵抗微生物侵袭,又非常保形且无缺陷。最后,我们简要讨论了成膜石墨烯薄膜与转移石墨烯薄膜在抗MIC应用中的有效性。尽管生长中的石墨烯薄膜没有重大缺陷,但石墨烯的湿转移显示会引入大规模缺陷,这使其不适用于当前应用。

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