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Polymer grafted nanoparticles: Effect of chemical and physical heterogeneity in polymer grafts on particle assembly and dispersion

机译:聚合物接枝纳米颗粒:聚合物接枝中化学和物理异质性对颗粒组装和分散的影响

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摘要

Macroscopic properties of polymer nanocomposites depend on the microscopic composite morphology of the constituent nanoparticles and polymer matrix. One way to control the spatial arrangement of the nanoparticles in the polymer matrix is by grafting the nanoparticle surfaces with polymers that can tune the effective interparticle interactions in the polymer matrix. A fundamental understanding of how graft and matrix polymer chemistries and molecular weight, grafting density, and nanoparticle size, and chemistry affect interparticle interactions is needed to design the appropriate polymer ligands to achieve the target morphology. Theory and simulations have proven to be useful tools in this regard due to their ability to link molecular level interactions to the morphology. In this feature article, we present our recent theory and simulation studies of polymer grafted nanoparticles with chemical and physical heterogeneity in grafts to calculate the effective interactions and morphology as a function of chemistry, molecular weights, grafting densities, and so forth.
机译:聚合物纳米复合材料的宏观性能取决于组成的纳米颗粒和聚合物基质的微观复合形态。控制纳米颗粒在聚合物基质中的空间排列的一种方法是通过用可以调节聚合物基质中有效的颗粒间相互作用的聚合物接枝纳米颗粒表面。要设计合适的聚合物配体以实现目标形态,需要对接枝和基质聚合物的化学性质以及分子量,接枝密度,纳米颗粒尺寸和化学如何影响颗粒间相互作用有基本的了解。在这方面,理论和模拟已被证明是有用的工具,因为它们能够将分子水平的相互作用与形态联系起来。在这篇专题文章中,我们介绍了近期在聚合物中接枝的具有化学和物理异质性的纳米粒子的理论和模拟研究,以计算有效相互作用和形态与化学性质,分子量,接枝密度等的关系。

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