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生物微观结构中的嵌套螺旋线。

Nested helicoids in biological microstructures.

机构信息

Department of Materials and Interfaces, Weizmann Institute of Science, Rehovot, 76100, Israel.

出版信息

Nat Commun. 2020 Jan 13;11(1):224. doi: 10.1038/s41467-019-13978-6.

Abstract

Helicoidal formations often appear in natural microstructures such as bones and arthropods exoskeletons. Named Bouligands after their discoverer, these structures are angle-ply laminates that assemble from laminae of chitin or collagen fibers embedded in a proteinaceous matrix. High resolution electron microscope images of cross-sections through scorpion claws are presented here, uncovering structural features that are different than so-far assumed. These include in-plane twisting of laminae around their corners rather than through their centers, and a second orthogonal rotation angle which gradually tilts the laminae out-of-plane. The resulting Bouligand laminate unit (BLU) is highly warped, such that neighboring BLUs are intricately intertwined, tightly nested and mechanically interlocked. Using classical laminate analysis extended to laminae tilting, it is shown that tilting significantly enhances the laminate flexural stiffness and strength, and may improve toughness by diverting crack propagation. These observations may be extended to diverse biological species and potentially applied to synthetic structures.

摘要

螺旋形结构经常出现在天然微观结构中,如骨骼和节肢动物的外骨骼。这些结构是以它们的发现者 Bouligand 的名字命名的,是由嵌入在蛋白质基质中的几丁质或胶原纤维层组装而成的角层合板。本文呈现了通过蝎子爪的横截面的高分辨率电子显微镜图像,揭示了与迄今为止假设的不同的结构特征。这些特征包括层板围绕其角而不是通过其中心的平面内扭曲,以及逐渐使层板偏离平面的第二个正交旋转角度。由此产生的 Bouligand 层合板单元(BLU)高度扭曲,使得相邻的 BLU 错综复杂地交织在一起,紧密嵌套并机械互锁。使用扩展到层板倾斜的经典层合板分析,表明倾斜显著提高了层合板的弯曲刚度和强度,并通过改变裂纹扩展方向可能提高韧性。这些观察结果可以扩展到不同的生物物种,并可能应用于合成结构。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/40f7/6957508/74f889421cd6/41467_2019_13978_Fig1_HTML.jpg

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