首页> 外文期刊>Journal of the American Chemical Society >On the role of tetramethylammonium cation and effects of solvent dynamics on the stability of the cage-like silicates Si6O156- and Si8O208- in aqueous solution. A molecular dynamics study
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On the role of tetramethylammonium cation and effects of solvent dynamics on the stability of the cage-like silicates Si6O156- and Si8O208- in aqueous solution. A molecular dynamics study

机译:关于四甲基铵阳离子的作用以及溶剂动力学对笼状硅酸盐Si6O156-和Si8O208-在水溶液中的稳定性的影响。分子动力学研究

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We have undertaken explicit solvent molecular dynamics simulations to investigate the preferential stabilization of the silicate octamer Si8O208- over the hexamer Si6O156- in relation with the ability of tetramethylammonium (TMA) to form an adsorption layer around these cage-like polyions. We have found that the hexamer cannot support such a layer and as a result is vulnerable to hydrolysis. The dynamics of TMA desorption off the surface of the hexamer is investigated in connection with the solvent dynamics. We have studied the energetics of this preferential stabilization by calculating the relative change in the free energies of formation between the complexes Si(8)O(20)(8-)center dot 8TMA and Si(6)O(15)(6-)center dot 6TMA and found the former to be more stable by 70 kcal/mol. We also find that the energetics are consistent with experimental data, suggesting that the hexamer is a long-lived metastable species. Furthermore, we have studied the solvent structure and dynamics in the vicinity of both the bare polyions and their complexes with TMA. We have found that, as anticipated, both the octamer and the hexamer participate in hydrogen bonds with the water molecules, regardless of whether a TMA adsorption layer exists or not. In fact, we find that the presence of a TMA adsorption layer has a rather profound effect on the stability of these hydrogen bonds-it increases their lifetime by at least a factor of 2 relative to that of the hydrogen bonds between water and the bare polyions.
机译:我们进行了显式的溶剂分子动力学模拟,以研究四甲基铵(TMA)在这些笼状聚离子周围形成吸附层的能力方面,相对于六聚体Si6O156-而言,硅酸盐八聚体Si8O208-的优先稳定性。我们发现六聚体不能支撑这样的层,因此易受水解作用。结合溶剂动力学研究了TMA从六聚体表面解吸的动力学。我们通过计算配合物Si(8)O(20)(8-)中心点8TMA和Si(6)O(15)(6-)之间形成自由能的相对变化,研究了这种优先稳定的能量学。点6TMA),发现前者以70 kcal / mol的速度更稳定。我们还发现,该能量学与实验数据一致,表明该六聚体是一种长寿命的亚稳态物种。此外,我们研究了裸聚离子及其与TMA的配合物附近的溶剂结构和动力学。我们已经发现,正如预期的那样,无论是否存在TMA吸附层,八聚物和六聚物都与水分子参与氢键。实际上,我们发现TMA吸附层的存在对这些氢键的稳定性产生了相当深远的影响-与水和裸露的多离子之间的氢键相比,它的寿命至少延长了2倍。 。

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