Al Zoubi Wail, Yoon Dong Keun, Kim Yang Gon, Ko Young Gun
Materials Electrochemistry Laboratory, School of Materials Science and Engineering, Yeungnam University, Gyeongsan 38541, Republic of Korea.
Extreme Fabrication Technology Group, Korea Institute of Industrial Technology, Daegu 42994, Republic of Korea.
J Colloid Interface Sci. 2020 Aug 1;573:31-44. doi: 10.1016/j.jcis.2020.03.117. Epub 2020 Mar 30.
Surface chemistry is a significant field of research, especially for the preparation of organic-inorganic hybrid materials in which nearly every atom is anchored at the interface. Herein we report on the functional binding agents (FBAs), Mg(OH) or Co(OH)-Mg(OH)-Co(OH)(NO), as efficient tools for functionalising surfaces, whereby the morphology and growth of the organic-inorganic coating can be varied by varying the interfacial composition to achieve improved functionality. To demonstrate the potential of this strategy, we combine plasma electrolytic oxidation (PEO) and a two-step dip chemical coating (DCC) technique to deliver multi-layered constructions of several chemical compositions comprising inorganic and organic components. A novel single layer of FBAs is fabricated on the rough inorganic coating through chemical treatment via DCC, transforming it into a binding site for primary clusters of 2-mercaptobenzimidazole (MBI) molecules. Thus, FBAs form coordination complexes with organic molecules, which grow on FBA surfaces. Finally, electrochemical measurements reveal that the self-assembly of organic-inorganic hybrid heterostructures appreciably suppresses metal oxidation and oxygen reduction, due to a synergistic effect arising from the combination of FBAs with organic and inorganic coatings.
表面化学是一个重要的研究领域,特别是对于有机-无机杂化材料的制备而言,其中几乎每个原子都锚定在界面处。在此,我们报道了功能粘合剂(FBA),即Mg(OH)或Co(OH)-Mg(OH)-Co(OH)(NO),作为使表面功能化的有效工具,通过改变界面组成可以改变有机-无机涂层的形态和生长,从而实现功能的改善。为了证明该策略的潜力,我们结合等离子体电解氧化(PEO)和两步浸涂化学涂层(DCC)技术,以提供由无机和有机成分组成的几种化学组成的多层结构。通过DCC化学处理,在粗糙的无机涂层上制备了一层新型的FBA单层,将其转化为2-巯基苯并咪唑(MBI)分子初级簇的结合位点。因此,FBA与有机分子形成配位络合物,这些有机分子在FBA表面生长。最后,电化学测量表明,由于FBA与有机和无机涂层结合产生的协同效应,有机-无机杂化异质结构的自组装显著抑制了金属氧化和氧还原。