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Influence of three-dimensional nanoparticle branching on the Young’s modulus of nanocomposites: Effect of interface orientation

机译:三维纳米粒子分支对纳米复合材料杨氏模量的影响:界面取向的影响

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摘要

With the availability of nanoparticles with controlled size and shape, there has been renewed interest in the mechanical properties of polymeranoparticle blends. Despite the large number of theoretical studies, the effect of branching for nanofillers tens of nanometers in size on the elastic stiffness of these composite materials has received limited attention. Here, we examine the Young's modulus of nanocomposites based on a common block copolymer (BCP) blended with linear nanorods and nanoscale tetrapod Quantum Dots (tQDs), in electrospun fibers and thin films. We use a phenomenological lattice spring model (LSM) as a guide in understanding the changes in the Young's modulus of such composites as a function of filler shape. Reasonable agreement is achieved between the LSM and the experimental results for both nanoparticle shapes—with only a few key physical assumptions in both films and fibers—providing insight into the design of new nanocomposites and assisting in the development of a qualitative mechanistic understanding of their properties. The tQDs impart the greatest improvements, enhancing the Young's modulus by a factor of 2.5 at 20 wt.%. This is 1.5 times higher than identical composites containing nanorods. An unexpected finding from the simulations is that both the orientation of the nanoscale filler and the orientation of X-type covalent bonds at the nanoparticle-ligand interface are important for optimizing the mechanical properties of the nanocomposites. The tQD provides an orientational optimization of the interfacial and filler bonds arising from its three-dimensional branched shape unseen before in nanocomposites with inorganic nanofillers.
机译:随着尺寸和形状受控的纳米颗粒的可用性,人们对聚合物/纳米颗粒共混物的机械性能有了新的兴趣。尽管进行了大量的理论研究,但数十纳米尺寸的纳米填料的分支对这些复合材料的弹性刚度的影响受到了有限的关注。在这里,我们研究了在电纺丝纤维和薄膜中基于普通嵌段共聚物(BCP)与线性纳米棒和纳米级四脚架量子点(tQDs)混合的纳米复合材料的杨氏模量。我们使用现象学的晶格弹簧模型(LSM)作为指导,以了解此类复合材料的杨氏模量随填料形状的变化。 LSM和纳米颗粒形状的实验结果之间达成了合理的共识-薄膜和纤维中只有几个关键的物理假设-为新纳米复合材料的设计提供了见识,并有助于对其性质的定性机械理解的发展。 tQD具有最大的改进,在20 wt。%时,杨氏模量提高了2.5倍。这是含有纳米棒的相同复合材料的1.5倍。来自模拟的意外发现是,纳米级填料的取向和纳米颗粒-配体界面处的X型共价键的取向对于优化纳米复合材料的机械性能都是重要的。 tQD提供了界面和填充剂键的定向优化,这是由于在无机无机填充剂的纳米复合材料中以前从未见过的三维支链形状而产生的。

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