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亚纳米级防污有机硅烷吸附层的水合作用:分子动力学模拟

On the hydration of subnanometric antifouling organosilane adlayers: a molecular dynamics simulation.

作者信息

Sheikh Sonia, Blaszykowski Christophe, Nolan Robert, Thompson Damien, Thompson Michael

机构信息

Department of Chemistry, University of Toronto, 80 St. George Street, Toronto, Ontario M5S 3H6, Canada.

Econous Systems Inc., 80 St. George Street, Toronto, Ontario M5S 3H6, Canada.

出版信息

J Colloid Interface Sci. 2015 Jan 1;437:197-204. doi: 10.1016/j.jcis.2014.09.025. Epub 2014 Sep 19.

Abstract

The connection between antifouling and surface hydration is a fascinating but daunting question to answer. Herein, we use molecular dynamics (MD) computer simulations to gain further insight into the role of surface functionalities in the molecular-level structuration of water (surface kosmotropicity)--within and atop subnanometric organosilane adlayers that were shown in previous experimental work to display varied antifouling behavior. Our simulations support the hypothesized intimate link between surface hydration and antifouling, in particular the importance of both internal and interfacial hydrophilicity and kosmotropicity. The antifouling mechanism is also discussed in terms of surface dehydration energy and water dynamicity (lability and mobility), notably the crucial requirement for clustered water molecules to remain tightly bound for extensive periods of time--i.e. exhibit slow exchange dynamics. A substrate effect on surface hydration, which would also participate in endowing antifouling adlayers with hydrogel-like characteristics, is also proposed. In contrast, the role of adlayer flexibility, if any, is assigned a secondary role in these ultrathin structures made of short building blocks. The conclusions from this work are well in line with those previously drawn in the literature.

摘要

防污与表面水合作用之间的联系是一个既引人入胜又颇具挑战性的问题。在此,我们运用分子动力学(MD)计算机模拟,以进一步深入了解表面官能团在水的分子水平结构化(表面促离子作用)中的作用,这些水存在于亚纳米级有机硅烷吸附层内部及顶部,先前的实验工作表明这些吸附层呈现出不同的防污行为。我们的模拟支持了表面水合作用与防污之间假设的紧密联系,特别是内部和界面亲水性及促离子作用的重要性。还从表面脱水能和水的动力学(不稳定性和流动性)方面讨论了防污机制,尤其是聚集水分子长时间紧密结合的关键要求,即表现出缓慢的交换动力学。还提出了底物对表面水合作用的影响,这也有助于赋予防污吸附层类似水凝胶的特性。相比之下,在由短结构单元构成的这些超薄结构中,吸附层柔韧性(若有的话)的作用被认为是次要的。这项工作的结论与文献中先前得出的结论非常一致。

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