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形状记忆聚合物实现的变色龙般的结构色调控。

Tuning of Structural Colors Like a Chameleon Enabled by Shape-Memory Polymers.

机构信息

Institute of Microstructure Technology, Karlsruhe Institute of Technology, Hermann-von-Helmholtz-Platz 1, 76344, Eggenstein-Leopoldshafen, Germany.

Nanophotonics Centre, Cavendish Laboratory, University of Cambridge, Cambridge, CB3 0HE, UK.

出版信息

Macromol Rapid Commun. 2018 Nov;39(21):e1800518. doi: 10.1002/marc.201800518. Epub 2018 Sep 12.

Abstract

Nature often uses structuring of materials for coloration rather than incorporating dye molecules, since single-construction materials are capable of producing any vivid visible color in plants and insects. By precisely engineering features that diffract or scatter light, more recently, humans have created similarly intense non-fading colors. Stretchable polymer opals have emerged as a single material which can dynamically shift across the whole visible spectrum using structural colors, by temporary stretching or compression. For energy efficiency and practical considerations, however, it is necessary to fix semi-permanently desired colors without continuous stretching or application of other stimuli or energy. Here, a polymer opal incorporating a shape-memory polymer embedded in its matrix can keep a particular color fixed without the application of external forces, yet can be reprogrammed to a different fixed color on demand. The influence of the material composition on its optical appearance, shape-fixity, and shape recovery abilities in controlled stretch experiments is quantified. High-speed printing-compatible localized compression pattern imprinting is shown to generate stable but easily erasable color patterns. This opens up the potential for durable and energy-efficient yet reusable and reconfigurable displays, wearables, or packaging and security labeling based on such polymeric film materials.

摘要

大自然通常利用材料的结构来产生颜色,而不是将染料分子融入其中,因为单一结构的材料就能在植物和昆虫中产生任何鲜艳的可见颜色。通过精确地设计能够衍射或散射光的特征,最近人类已经创造出了类似的强烈且不褪色的颜色。可拉伸聚合物蛋白石作为一种单一材料出现,它可以通过临时拉伸或压缩,使用结构色在整个可见光谱范围内动态地切换。然而,出于能源效率和实际考虑,需要固定半永久性的理想颜色,而无需持续拉伸或施加其他刺激或能量。在这里,一种聚合物蛋白石将形状记忆聚合物嵌入其基质中,可以在不施加外力的情况下将特定颜色固定,但可以根据需要重新编程为不同的固定颜色。定量研究了材料组成对其光学外观、形状固定性和形状恢复能力的影响。研究表明,高速打印兼容的局部压缩图案压印可以产生稳定但易于擦除的颜色图案。这为基于这种聚合物薄膜材料的耐用、节能、可重复使用和可重新配置的显示器、可穿戴设备或包装和安全标签开辟了可能性。

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