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Phosphonate- and Carboxylate-Based Self-Assembled Monolayers for Organic Devices: A Theoretical Study of Surface Binding on Aluminum Oxide with Experimental Support

机译:用于有机设备的基于膦酸酯和羧酸盐的自组装单层膜:在氧化铝与实验支持下表面结合的理论研究

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We report a computational study on the chemical bonding of phosphonates and carboxylates to aluminum oxide surfaces and how the binding properties are related to the amount of water in the experimental environment. Two different surface structures were used in the calculations in order to model representative adsorption sites for the phosphonates and carboxylates and to account for the amorphous nature of the hydroxylated AlO_x. films in experiment. For the phosphonates, we find that the thermodynamically preferred binding mode changes between mono-, bi-, and tridentate depending on the surface structure and the amount of residual water. For the carboxylates, on the other hand, monodentate adsorption is always lower in energy at all experimental conditions. Phosphonates are more strongly bound to aluminum oxide than carboxylates, so that carboxylates can be replaced easily by phosphonates. The theoretical findings are consistent with those obtained in adsorption, desorption, and exchange reactions of n-alkyl phosphonic and carboxylic acids on AlO_x. surfaces. The results provide an atomistic understanding of the adsorption and help to optimize experimental conditions for self-assembly of organic films on aluminum oxide surfaces.
机译:我们报告了对膦酸酯和羧酸酯与氧化铝表面的化学键合以及结合特性与实验环境中的水量如何相关的计算研究。在计算中使用了两种不同的表面结构,以便对膦酸酯和羧酸酯的代表性吸附位点进行建模,并说明羟基化AlO_x的无定形性质。电影在实验中。对于膦酸酯,我们发现热力学上优选的结合方式根据表面结构和残留水量在单齿,双齿和三齿之间变化。另一方面,对于羧酸盐,在所有实验条件下单齿吸附的能量总是较低。膦酸酯比羧酸酯更牢固地结合在氧化铝上,因此羧酸酯可以很容易地被膦酸酯代替。理论发现与在AlO_x上正烷基膦酸和羧酸的吸附,解吸和交换反应中获得的结果一致。表面。结果提供了对吸附的原子学理解,并有助于优化在氧化铝表面上有机膜自组装的实验条件。

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