首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Polymer Chain Diffusion in All-Polymer Nanocomposites: Confinement vs Chain Acceleration
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Polymer Chain Diffusion in All-Polymer Nanocomposites: Confinement vs Chain Acceleration

机译:全聚合物纳米复合材料中的聚合物链扩散:限制VS链加速度

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All-polymer nanocomposites, in which soft, polymer-based nanoparticles are dispersed in the polymer matrix, have received great interest lately due to their potential use in a range of applications, including drug delivery and self-healing materials. However, the impact of this new class of nanoparticles on the dynamics of a linear polymer matrix in an all-polymer nanocomposite is still largely unknown. In this work, we report that the addition of polystyrene soft nanoparticles accelerates the diffusion of high molecular weight linear PS chains over a range of nanoparticle loadings. Our results show that at nanoparticle loadings below 1%, the diffusion of the linear matrix increases, presumably via a constraint release mechanism. At loadings above 1%, the increase in diffusion is mitigated by confinement effects of the nanoparticles. Thus, the response of these all-polymer nanocomposites is dominated by the balance of entropic confinement of the chain, which slows diffusion and a constraint release mechanism that speeds up the diffusion. However, the diffusion of the linear chain in the all-polymer nanocomposite is faster than that of the same chain in the melt at all loadings, diverging from the behavior of most nanocomposites with hard, impenetrable nanoparticles. Thus, the mechanism that accelerates the chain diffusion dominates in these systems. This behavior is unusual and fundamentally different than what has been reported for nanocomposites with hard inorganic nanoparticles, indicating that new perspectives are needed for these materials where the control of loading can either accelerate or decelerate the dynamics of the matrix in a distinctive manner.
机译:所有聚合物纳米复合材料,其中柔软的聚合物基纳米颗粒分散在聚合物基质中,最近在潜在的一系列应用中使用,包括药物递送和自我愈合材料。然而,这类新的纳米颗粒对全聚合物纳米复合材料中的线性聚合物基质的动态的影响仍然很大程度上是未知的。在这项工作中,我们报道了聚苯乙烯软纳米颗粒的添加加速了高分子量线性Ps链在一系列纳米颗粒载体上的扩散。我们的结果表明,在低于1%以下的纳米粒子载荷下,线性基质的扩散增加,可能通过约束释放机制增加。在1%以上的载荷时,通过纳米颗粒的限制效应来减轻扩散的增加​​。因此,这些全聚合物纳米复合材料的响应是由链的熵限制的平衡来支配,其减缓扩散和加速扩散的约束释放机制。然而,在所有聚合物纳米复合材料中的线性链的扩散比所有载荷的熔体中相同的链中的相同链的扩散,从大多数纳米复合材料的行为发散,具有硬,难以造成的纳米颗粒。因此,加速链扩散的机制在这些系统中占主导地位。这种行为是不寻常的,并且从根本上不同于纳米复合材料与硬无机纳米颗粒的纳米复合物的含量不同,表明这些材料需要新的观点,其中负载控制可以以独特的方式加速或减速基质的动力学。

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