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Molecular dynamics study on stiffness and ductility in chitin-protein composite

机译:几丁质蛋白复合材料的刚度和延展性的分子动力学研究

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Chitin-protein composite is the structural material of many marine animals including lobster, squid, and sponge. The relationship between mechanical performance and hierarchical nanostructure in those composites attracts extensive research interests. In order to study the molecular mechanism behind, we construct atomistic models of chitin-protein composite and conduct computational tensile tests through molecular dynamics simulations. The effects of water content and chitin fiber length on the stiffness are examined. The result reveals the detrimental effect on the stiffness of chitin-protein composite due to the presence of water molecules. Meanwhile, it is found that the chitin-protein composite becomes stiffer as the embedded chitin fiber is longer. As the tensile deformation proceeds, the stress-strain curve features a saw-tooth appearance, which can be explained by the interlocked zigzag nanostructure between adjacent chitin fibers. These interlocked sites can sacrificially break for energy dissipation when the system undergoes large deformation, leading to an improvement of ductility.
机译:几丁质蛋白复合物是许多海洋动物的结构材料,包括龙虾,鱿鱼和海绵。这些复合材料的机械性能和分级纳米结构之间的关系吸引了广泛的研究兴趣。为了研究背后的分子机理,我们构建了几丁质蛋白复合物的原子模型,并通过分子动力学模拟进行了拉伸试验。研究了水分和几丁质纤维长度对刚度的影响。结果揭示了由于水分子的存在对几丁质-蛋白质复合物的刚度的有害影响。同时,发现随着包埋的几丁质纤维越长,几丁质-蛋白质复合物变得越硬。随着拉伸变形的进行,应力-应变曲线呈现锯齿状外观,这可以用相邻几丁质纤维之间互锁的锯齿形纳米结构来解释。当系统发生较大变形时,这些互锁的位置可能会牺牲性地破坏以消耗能量,从而提高延展性。

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