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Periodically microstructured composite films made by electric- and magnetic-directed colloidal assembly

机译:通过电和磁定向胶体组装制成的周期性微结构化复合膜

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摘要

Living organisms often combine soft and hard anisotropic building blocks to fabricate composite materials with complex microstructures and outstanding mechanical properties. An optimum design and assembly of the anisotropic components reinforces the material in specific directions and sites to best accommodate multidirectional external loads. Here, we fabricate composite films with periodic modulation of the soft–hard microstructure by simultaneously using electric and magnetic fields. We exploit forefront directed-assembly approaches to realize highly demanded material microstructural designs and showcase a unique example of how one can bridge colloidal sciences and composite technology to fabricate next-generation advanced structural materials. In the proof-of-concept experiments, electric fields are used to dictate the position of the anisotropic particles through dielectrophoresis, whereas a rotating magnetic field is used to control the orientation of the particles. By using such unprecedented control over the colloidal assembly process, we managed to fabricate ordered composite microstructures with up to 2.3-fold enhancement in wear resistance and unusual site-specific hardness that can be locally modulated by a factor of up to 2.5.
机译:活生物通常将软硬的各向异性构造块结合在一起,以制造具有复杂的微观结构和出色机械性能的复合材料。各向异性组件的最佳设计和组装可以在特定的方向和位置增强材料,以最好地适应多向外部载荷。在这里,我们通过同时使用电场和磁场来制造具有软硬微观结构周期性调制的复合膜。我们利用最前沿的定向组装方法来实现高要求的材料微结构设计,并展示了一个独特的例子,说明人们如何桥接胶体科学和复合技术来制造下一代先进的结构材料。在概念验证实验中,通过介电泳将电场用于指示各向异性粒子的位置,而将旋转磁场用于控制粒子的方向。通过对胶体组装过程进行如此空前的控制,我们设法制造出有序的复合材料微结构,其耐磨性提高了2.3倍,特殊的局部特定硬度提高了2.5倍。

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