丝绸
甲壳素
丝素
材料科学
纳米纤维
纳米技术
结构着色
光学透明度
生物相容性材料
仿生学
高分子科学
生物电子学
复合材料
生物传感器
光电子学
生物
壳聚糖
生物医学工程
光子晶体
医学
生物化学
作者
Moo‐Seok Hong,Gwang‐Mun Choi,Joohee Kim,Jiuk Jang,Byeongwook Choi,Joong‐Kwon Kim,Seung‐hwan Jeong,Seongmin Leem,Hee Young Kwon,Hyunbin Hwang,Hyeon‐Gyun Im,Jang‐Ung Park,Byeong‐Soo Bae,Jungho Jin
标识
DOI:10.1002/adfm.201705480
摘要
Abstract The cuticles of insects and marine crustaceans are fascinating models for man‐made advanced functional composites. The excellent mechanical properties of these biological structures rest on the exquisite self‐assembly of natural ingredients, such as biominerals, polysaccharides, and proteins. Among them, the two commonly found building blocks in the model biocomposites are chitin nanofibers and silk‐like proteins with β‐sheet structure. Despite being wholly organic, the chitinous protein complex plays a key role for the biocomposites by contributing to the overall mechanical robustness and structural integrity. Moreover, the chitinous protein complex alone without biominerals is optically transparent (e.g., dragonfly wings), thereby making it a brilliant model material system for engineering applications where optical transparency is essentially required. Here, inspired by the chitinous protein complex of arthropods cuticles, an optically transparent biomimetic composite that hybridizes chitin nanofibers and silk fibroin (β‐sheet) is introduced, and its potential as a biocompatible structural platform for emerging wearable devices (e.g., smart contact lenses) and advanced displays (e.g., transparent plastic cover window) is demonstrated.
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