蜘蛛丝
丝绸
材料科学
湿度
蜘蛛
微观结构
高分子科学
玻璃化转变
扭转
线程(计算)
化学物理
复合材料
纳米技术
聚合物
热力学
计算机科学
物理
天文
操作系统
数学
几何学
作者
Noy Cohen,Claus D. Eisenbach
标识
DOI:10.1103/physrevlett.128.098101
摘要
Spider silk is a protein material that exhibits extraordinary and nontrivial properties such as the ability to soften, decrease in length (i.e., supercontract), and twist upon exposure to high humidity. These behaviors stem from a unique microstructure in combination with a transition from glassy to rubbery as a result of humidity-driven diffusion of water. In this Letter we propose four length scales that govern the mechanical response of the silk during this transition. In addition, we develop a model that describes the microstructural evolution of the spider silk thread and explains the response due to the diffusion of water molecules. The merit of the model is demonstrated through an excellent agreement to experimental findings. The insights from this Letter can be used as a microstructural design guide to enable the development of new materials with unique spiderlike properties.
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