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生物复合材料——具有功能多样性的复杂结构。

Biological composites-complex structures for functional diversity.

机构信息

Max Planck Institute of Colloids and Interfaces, Department of Biomaterials, Research Campus Golm, 14424 Potsdam, Germany.

出版信息

Science. 2018 Nov 2;362(6414):543-547. doi: 10.1126/science.aat8297.

Abstract

The bulk of Earth's biological materials consist of few base substances-essentially proteins, polysaccharides, and minerals-that assemble into large varieties of structures. Multifunctionality arises naturally from this structural complexity: An example is the combination of rigidity and flexibility in protein-based teeth of the squid sucker ring. Other examples are time-delayed actuation in plant seed pods triggered by environmental signals, such as fire and water, and surface nanostructures that combine light manipulation with mechanical protection or water repellency. Bioinspired engineering transfers some of these structural principles into technically more relevant base materials to obtain new, often unexpected combinations of material properties. Less appreciated is the huge potential of using bioinspired structural complexity to avoid unnecessary chemical diversity, enabling easier recycling and, thus, a more sustainable materials economy.

摘要

地球的生物材料主要由几种基本物质组成——实质上是蛋白质、多糖和矿物质,它们组合成多种结构。多功能性自然源于这种结构的复杂性:一个例子是鱿鱼吸盘环的基于蛋白质的牙齿的刚性和柔韧性的结合。其他例子包括植物豆荚在环境信号(如火和水)触发下的延时驱动,以及将光操纵与机械保护或疏水性结合在一起的表面纳米结构。受生物启发的工程将这些结构原理中的一些转移到在技术上更相关的基础材料中,以获得新材料,这些新材料通常具有意想不到的材料性能组合。不太为人所知的是,利用受生物启发的结构复杂性来避免不必要的化学多样性具有巨大的潜力,这使得回收变得更加容易,从而实现了更可持续的材料经济。

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