刚度(电磁)
灵活性(工程)
仿生材料
结构刚度
纳米技术
生化工程
材料科学
计算机科学
结构工程
复合材料
工程类
数学
统计
作者
Michaela Eder,Shahrouz Amini,Peter Fratzl
出处
期刊:Science
[American Association for the Advancement of Science (AAAS)]
日期:2018-11-01
卷期号:362 (6414): 543-547
被引量:342
标识
DOI:10.1126/science.aat8297
摘要
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.
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