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Large-scale ordering of nanoparticles using viscoelastic shear processing

机译:使用粘弹性剪切加工的纳米颗粒的大规模有序化

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摘要

Despite the availability of elaborate varieties of nanoparticles, their assembly into regular superstructures and photonic materials remains challenging. Here we show how flexible films of stacked polymer nanoparticles can be directly assembled in a roll-to-roll process using a bending-induced oscillatory shear technique. For sub-micron spherical nanoparticles, this gives elastomeric photonic crystals termed polymer opals showing extremely strong tunable structural colour. With oscillatory strain amplitudes of 300%, crystallization initiates at the wall and develops quickly across the bulk within only five oscillations. The resulting structure of random hexagonal close-packed layers is improved by shearing bidirectionally, alternating between two in-plane directions. Our theoretical framework indicates how the reduction in shear viscosity with increasing order of each layer accounts for these results, even when diffusion is totally absent. This general principle of shear ordering in viscoelastic media opens the way to manufacturable photonic materials, and forms a generic tool for ordering nanoparticles.
机译:尽管可以使用复杂的纳米粒子,但将其组装成规则的超结构和光子材料仍然具有挑战性。在这里,我们展示了如何使用弯曲诱导的振荡剪切技术在成卷过程中直接组装堆叠的聚合物纳米颗粒的柔性膜。对于亚微米球形纳米颗粒,这将产生称为聚合物蛋白石的弹性体光子晶体,显示出极强的可调结构色。振荡应变幅度为300%时,结晶在壁处开始,并且仅在5次振荡中就在整个块体中快速发展。通过在两个面内方向之间交替进行双向剪切,可以改善随机六边形紧密堆积层的最终结构。我们的理论框架表明,即使完全不存在扩散,随着层数的增加,剪切粘度的降低也是这些结果的原因。粘弹性介质中剪切排序的一般原理为可制造的光子材料开辟了道路,并形成了用于排序纳米粒子的通用工具。

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