生物系统
表皮(毛发)
生物矿化
方解石
仿生学
材料科学
外骨骼
适应(眼睛)
无定形碳酸钙
宏观尺度
纳米技术
碳酸钙
甲壳素
计算机科学
化学
化学工程
生物
复合材料
解剖
工程类
矿物学
物理
神经科学
模拟
量子力学
壳聚糖
作者
Helge‐Otto Fabritius,Andreas Ziegler,Martin Friák,S. Nikolov,Julia Huber,Bastian Hans Michael Seidl,Sukhum Ruangchai,Francisca I. Alagboso,Simone Karsten,Jin Lu,Anna Janus,Michal Petrov,Li Zhu,Pavlína Hemzalová,Sabine Hild,Dierk Raabe,Jörg Neugebauer
标识
DOI:10.1088/1748-3190/11/5/055006
摘要
The crustacean cuticle is a composite material that covers the whole animal and forms the continuous exoskeleton. Nano-fibers composed of chitin and protein molecules form most of the organic matrix of the cuticle that, at the macroscale, is organized in up to eight hierarchical levels. At least two of them, the exo- and endocuticle, contain a mineral phase of mainly Mg-calcite, amorphous calcium carbonate and phosphate. The high number of hierarchical levels and the compositional diversity provide a high degree of freedom for varying the physical, in particular mechanical, properties of the material. This makes the cuticle a versatile material ideally suited to form a variety of skeletal elements that are adapted to different functions and the eco-physiological strains of individual species. This review presents our recent analytical, experimental and theoretical studies on the cuticle, summarising at which hierarchical levels structure and composition are modified to achieve the required physical properties. We describe our multi-scale hierarchical modeling approach based on the results from these studies, aiming at systematically predicting the structure-composition-property relations of cuticle composites from the molecular level to the macro-scale. This modeling approach provides a tool to facilitate the development of optimized biomimetic materials within a knowledge-based design approach.
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