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Length scales of interactions in magnetic, dielectric, and mechanical nanocomposites

机译:磁性,电介质和机械纳米复合材料中的相互作用的长度

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It is investigated how figures of merits of nanocomposites are affected by structural and interaction length scales. Aside from macroscopic effects without characteristic lengths scales and atomic-scale quantum-mechanical interactions there are nanoscale interactions that reflect a competition between different energy contributions. We consider three systems, namely dielectric media, carbon-black reinforced rubbers and magnetic composites. In all cases, it is relatively easy to determine effective materials constants, which do not involve specific length scales. Nucleation and breakdown phenomena tend to occur on a nanoscale and yield a logarithmic dependence of figures of merit on the macroscopic system size. Essential system-specific differences arise because figures of merits are generally nonlinear energy integrals. Furthermore, different physical interactions yield different length scales. For example, the interaction in magnetic hard-soft composites reflects the competition between relativistic anisotropy and nonrelativistic exchange interactions, but such hierarchies of interactions are more difficult to establish in mechanical polymer composites and dielectrics.
机译:研究了纳米复合材料的优点的图是如何受结构和相互作用长度尺度的影响。除了没有特征长度的宏观效应,尺度和原子级量子机械相互作用,存在纳米级相互作用,反映了不同能量贡献之间的竞争。我们考虑三个系统,即介电介质,炭黑增强橡胶和磁性复合材料。在所有情况下,确定不涉及特定长度尺度的有效材料常数相对容易。在纳米级上倾向于发生成核和击穿现象,并产生对宏观系统尺寸的优异图的对数依赖性。出现基本系统特定的差异,因为优点的图通常是非线性能量积分。此外,不同的物理相互作用产生不同的长度尺度。例如,磁性硬质复合材料的相互作用反映了相对论各向异性和非椭圆形式交换相互作用之间的竞争,但是这种相互作用的等级难以建立机械聚合物复合材料和电介质。

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