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Interfacial Connection Mechanisms in Calcium-Silicate-Hydrates/Polymer Nanocomposites: A Molecular Dynamics Study

机译:钙 - 硅酸钙 - 水合物/聚合物纳米复合材料中的界面连接机制:分子动力学研究

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Properties of organic/inorganic composites can be highly dependent on the interfacial connections. In this work, molecular dynamics, using pair-potential based force fields, was employed to investigate the structure, dynamics, and stability of interfacial connections between calcium silicate hydrates (C-S-H) and organic functional groups of three different polymer species. The calculation results suggest that the affinity between C-S-H and polymers is influenced by the polarity of the functional groups and the diffusivity and aggregation tendency of the polymers. In the interfaces, the calcium counterions from C-S-H act as the coordination atoms in bridging the double bonded oxygen atoms in the carboxyl groups (-COOH), and the Ca-O connection plays a dominant role in binding poly(acrylic acid) (PAA) due to the high bond strength defined by time-correlated function. The defective calcium silicate chains provide significant numbers of nonbridging oxygen sites to accept H-bonds from -COOH groups. As compared with PAA, the interfacial interactions are much weaker between C-S-H and poly(vinyl alcohol) (PVA) or poly(ethylene glycol) (PEG). Predominate percentage of the -OH groups in the PVA form H-bonds with inter- and intramolecule, which results in the polymer intertwining and reduces the probability of H-bond connections between PVA and C-S-H. On the other hand, the inert functional groups (C-O-C) in poly(ethylene glycol) (PEG) make this polymer exhibit unfolded configurations and move freely with little restrictions. The interaction mechanisms interpreted in this organic inorganic interface can give fundamental insights into the polymer modification of C-S-H and further implications to improving cement-based materials from the genetic level.
机译:有机/无机复合材料的性质可以高度依赖于界面连接。在这项工作中,采用基于对电位的力场的分子动力学来研究硅酸钙水合物(C-S-H)和三种不同聚合物种类的有机官能团之间的界面连接的结构,动力学和稳定性。计算结果表明,C-S-H和聚合物之间的亲和力受官能团的极性和聚合物的扩散性和聚集趋势的影响。在界面中,来自CSH的钙抗衡离子作为在羧基(-COOH)中桥接双键氧原子的配位原子,并且CA-O连接在结合聚(丙烯酸)(PAA)中起显性作用由于随时间相关功能限定的高键合强度。缺陷的硅酸钙链提供了显着的非录像氧气位点,以接受来自-COOH基团的H键。与PAA相比,C-S-H和聚(乙烯醇)(PVA)或聚(乙二醇)(PEG)之间的界面相互作用较大。 PVA中的-OH基团的百分比与骨腔相互作用,这导致聚合物交织并降低PVA和C-S-H之间的H键连接的概率。另一方面,聚(乙二醇)(PEG)中的惰性官能团(C-O-C)使得该聚合物表现出展开的配置并随着限制而自由移动。解释在该有机无机界面中的相互作用机制可以向C-S-H的聚合物改性提供基本的见解,并进一步意义从遗传水平改善水泥基材料。

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