聚多巴胺改性石墨C3N4复合材料的协同防腐涂料

IF 2.4 3区 材料科学 Q3 MATERIALS SCIENCE, COATINGS & FILMS Journal of Vacuum Science & Technology A Pub Date : 2023-09-22 DOI:10.1116/6.0002769
Lijuan Li, Hongrui Yao, Wenya Bi, Wanlu Fu, Na Wang
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引用次数: 0

摘要

由于纳米填料的均匀分散和与环氧树脂良好的界面相容性是提高其防腐性能的最关键参数,因此在硅烷偶联剂的帮助下,将PDA改性的g-C3N4与纳米ceo2叠加在一起,设计了一种新型的高效防腐纳米填料[聚多巴胺(PDA)@g-C3N4-CeO2]。通过FTIR、XRD、XPS、SEM、TEM等表征了PDA@g-C3N4-CeO2的结构和形貌。将PDA@g-C3N4-CeO2纳米填料装入水性环氧涂料(WEC)中,并对制备的纳米复合涂层的耐腐蚀性能进行了研究。从分散性测试可以推断,经PDA和纳米ceo2修饰的g-C3N4在去离子水中具有良好的分散性和相容性。电化学阻抗谱(EIS)结果表明,PDA@g-C3N4-CeO2纳米复合镀层的耐蚀性能最好,其低频阻抗(Zf=0.01Hz)为1.78 × 109 Ω cm2,比纯WEC (4.27 × 107 Ω cm2)提高了2个数量级。在盐雾试验中,PDA@g-C3N4-CeO2/WEC也表现出优异的长期耐蚀性,即使在600 h后也几乎没有腐蚀产物,这与EIS试验的结果一致。此外,PDA@g-C3N4-CeO2/WEC也体现了最优异的附着强度(14.22 MPa),比纯WEC (9.78 MPa)提高了45.40%。一般来说,PDA@g-C3N4-CeO2/WEC具有优异的保护性能是由于PDA和KH-550修饰的纳米ceo2在g-C3N4表面的存在,增加了纳米填料与环氧树脂之间的相容性和表面相互作用。
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Anticorrosive coatings made from polydopamine modified graphitic C3N4 composites with synergistic anticorrosion effects
Since uniform dispersion and robust interfacial compatibility of nanofiller with epoxy resin are the most critical parameters to improve the corrosion protection property, a new effective anticorrosion nanofiller [polydopamine (PDA)@g-C3N4-CeO2] is designed by stacking PDA modified g-C3N4 and nano-CeO2 with the help of a silane coupling agent. The structure and morphology of PDA@g-C3N4-CeO2 are characterized by FTIR, XRD, XPS, SEM, and TEM. Furthermore, the PDA@g-C3N4-CeO2 nanofiller is loaded within waterborne epoxy coating (WEC) and the corrosion resistance of the prepared nanocomposite coating is studied. It can be inferred from the dispersion test that g-C3N4 modified by PDA and nano-CeO2 exhibits excellent dispersion and compatibility in de-ionized water. The Electrochemical impedance spectroscope (EIS) results indicate that nanocomposite coating with PDA@g-C3N4-CeO2 exhibits the best corrosion resistance, and its low-frequency impedance (Zf=0.01Hz) is 1.78 × 109 Ω cm2, which is two orders of magnitude higher than that of pure WEC (4.27 × 107 Ω cm2). In the salt spray test, PDA@g-C3N4-CeO2/WEC also showed excellent long-term corrosion resistance with few corrosion products even after 600 h, which was consistent with the results of the EIS test. In addition, PDA@g-C3N4-CeO2/WEC also reflects the most fantastic adhesion strength (14.22 MPa), which is improved by 45.40% than that of pure WEC (9.78 MPa). Generally, the excellent protection properties of PDA@g-C3N4-CeO2/WEC are attributed to the presence of PDA and KH-550 modified nano-CeO2 on the surface of g-C3N4, which increase the compatibility and surface interactions between nanofillers and epoxy resin.
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来源期刊
Journal of Vacuum Science & Technology A
Journal of Vacuum Science & Technology A 工程技术-材料科学:膜
CiteScore
5.10
自引率
10.30%
发文量
247
审稿时长
2.1 months
期刊介绍: Journal of Vacuum Science & Technology A publishes reports of original research, letters, and review articles that focus on fundamental scientific understanding of interfaces, surfaces, plasmas and thin films and on using this understanding to advance the state-of-the-art in various technological applications.
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