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PDADMAC/PSS Oligoelectrolyte Multilayers: Internal Structure and Hydration Properties at Early Growth Stages from Atomistic Simulations

机译:PDADMAC / PSS寡电解质多层:原子模拟模拟的早期生长阶段的内部结构和水合性质

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摘要

We analyze the internal structure and hydration properties of poly(diallyl dimethyl ammonium chloride)/poly(styrene sulfonate sodium salt) oligoelectrolyte multilayers at early stages of their layer-by-layer growth process. Our study is based on large-scale molecular dynamics simulations with atomistic resolution that we presented recently [Sánchez et al., , 15, 9437], in which we produced the first four deposition cycles of a multilayer obtained by alternate exposure of a flat silica substrate to aqueous electrolyte solutions of such polymers at 0.1M of NaCl. In contrast to any previous work, here we perform a local structural analysis that allows us to determine the dependence of the multilayer properties on the distance to the substrate. We prove that the large accumulation of water and ions next to the substrate observed in previous overall measurements actually decreases the degree of intrinsic charge compensation, but this remains as the main mechanism within the interface region. We show that the range of influence of the substrate reaches approximately 3 nm, whereas the structure of the outer region is rather independent from the position. This detailed characterization is essential for the development of accurate mesoscale models able to reach length and time scales of technological interest.
机译:我们分析了聚(二烯丙基二甲基氯化铵)/聚(苯乙烯磺酸钠盐)低聚物多层电解质在其逐层生长过程早期的内部结构和水合性能。我们的研究基于我们最近提出的具有原子分辨率的大规模分子动力学模拟[Sánchez等, ,[15,9437],其中我们产生了多层的前四个沉积周期,该多层是通过将平面二氧化硅基材交替暴露于0.1M NaCl的此类聚合物的电解质水溶液中而获得的。与任何以前的工作相比,这里我们进行局部结构分析,从而可以确定多层特性对到基材的距离的依赖性。我们证明了在先前的总体测量中观察到的大量水和离子在基体旁边的堆积实际上降低了本征电荷补偿的程度,但这仍然是界面区域内的主要机制。我们表明,基板的影响范围达到大约3 nm,而外部区域的结构则与位置无关。这种详细的表征对于开发能够达到技术兴趣的长度和时间尺度的精确中尺度模型至关重要。

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