Liu Chengbao, Qian Bei, Hou Peimin, Song Zuwei
University of Chinese Academy of Sciences, Beijing 100049, P. R. China.
College of Chemistry and Pharmaceutical Sciences, Qingdao Agricultural University, Qingdao 266109, P. R. China.
ACS Appl Mater Interfaces. 2021 Jan 27;13(3):4429-4441. doi: 10.1021/acsami.0c22642. Epub 2021 Jan 14.
Metal substrates beneath polymeric coatings are susceptible to localized corrosion, which could result in lifetime reduction and catastrophic failure without timely repair treatment. In situ detection of corrosion and repair coating defects are in high demand yet challenging to fulfill so far. Herein, we report a smart polymeric coating by integrating nanosensors into the coating matrix, which is capable of efficient corrosion sensing and active anticorrosion protecting. The nanosensors were constructed by zeolitic imidazolate framework encapsulated with the polyethylene glycol-tannic acid complex. The morphology, chemical constitution, and stimulus responsiveness of nanosensors were systematically analyzed. The generation of local corrosion beneath coating can be promptly sensed and reported by a conspicuous purple color derived from tannic-iron ion coordinates. Meanwhile, local electrochemical impedance spectroscopy results proved that the metal degradation process at the defected interface can be largely inhibited, exhibiting active anticorrosion property. Furthermore, the constructed smart coating possessed superior impermeability and long-term protective performance under simulated seawater and harsh salts spray conditions. This feasible and effective strategy based on simple nanosensors to engineer smart coatings paves a new way to develop high environmental adaptability protective materials with protecting, corrosion sensing, and self-healing functions.
聚合物涂层下方的金属基底易发生局部腐蚀,如不及时进行修复处理,可能会导致使用寿命缩短和灾难性故障。目前,对腐蚀和修复涂层缺陷的原位检测需求迫切,但至今仍颇具挑战。在此,我们报道了一种通过将纳米传感器集成到涂层基质中构建的智能聚合物涂层,该涂层能够实现高效的腐蚀传感和主动防腐保护。纳米传感器由包裹有聚乙二醇 - 单宁酸复合物的沸石咪唑酯骨架构建而成。我们对纳米传感器的形态、化学组成和刺激响应性进行了系统分析。涂层下方局部腐蚀的产生可通过单宁 - 铁离子配位产生的明显紫色迅速感知并报告。同时,局部电化学阻抗谱结果证明,缺陷界面处的金属降解过程可得到很大程度的抑制,表现出主动防腐性能。此外,所构建的智能涂层在模拟海水和严苛的盐雾条件下具有优异的抗渗透性和长期保护性能。这种基于简单纳米传感器设计智能涂层的可行且有效策略,为开发具有保护、腐蚀传感和自修复功能的高环境适应性防护材料开辟了一条新途径。