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Nanotwin-governed toughening mechanism in hierarchically structured biological materials

机译:纳米结构控制的生物材料中增韧机制

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As a natural biocomposite, Strombus gigas , commonly known as the giant pink queen conch shell, exhibits outstanding mechanical properties, especially a high fracture toughness. It is known that the basic building block of conch shell contains a high density of growth twins with average thickness of several nanometres, but their effects on the mechanical properties of the shell remain mysterious. Here we reveal a toughening mechanism governed by nanoscale twins in the conch shell. A combination of in situ fracture experiments inside a transmission electron microscope, large-scale atomistic simulations and finite element modelling show that the twin boundaries can effectively block crack propagation by inducing phase transformation and delocalization of deformation around the crack tip. This mechanism leads to an increase in fracture energy of the basic building block by one order of magnitude, and contributes significantly to that of the overall structure via structural hierarchy.
机译:作为一种天然的生物复合材料,巨大的粉红色女王海螺壳(Strongbus gigas)通常具有巨大的机械性能,尤其是高断裂韧性。众所周知,海螺壳的基本构件包含高密度的生长孪晶,平均厚度为几纳米,但是它们对壳的机械性能的影响仍然是神秘的。在这里,我们揭示了由海螺壳中的纳米级孪晶控制的增韧机理。透射电子显微镜内的原位断裂实验,大规模原子模拟和有限元建模的结合表明,孪晶边界可通过引起裂纹尖端周围的相变和变形局部化而有效地阻止裂纹扩展。这种机制导致基本构件的断裂能增加一个数量级,并通过结构层次显着地促进了整个结构的断裂能。

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